Curriculum(s) for 2024 - Mechanical Engineering (32935)
1st year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1044962 | CONTROL SYSTEMS | 1st | 9 | ING-INF/04 | ENG | |
Educational objectives General objectives The course provides the basic tools for analyzing and designing feedback controllers for linear dynamic systems, using both state-space and input-output descriptions. Specific objectives Knowledge and understanding: Apply knowledge and understanding: Critical and judgment skills: Communication skills: Learning ability: | |||||
1044458 | Fluid machinery in energy conversion systems | 1st | 9 | ING-IND/08 | ENG | |
Educational objectives FMECS | |||||
1021983 | MECHANICAL AND THERMAL MEASUREMENTS | 1st | 9 | ING-IND/12 | ITA | |
Educational objectives Giving the basis to design correctly a measurement chain according to the requirements both of test drivers and of users. Teaching the students the most significant experimental methods and devices for mechanical and thermal measurements. Let graduate fellows operate experimentally in mechanical industry. | |||||
Elective course | 1st | 6 | N/D | ITA | |
1055047 | Economics of technology and management | 2nd | 6 | ING-IND/35 | ENG | |
Educational objectives Knowledge and understanding The course deals with the decision making processes of firms. In particular, students are expected to learn the basic principles of Applying knowledge and understanding Students will be able to apply basic methods and models of microeconomics, organization theory and corporate finance in order to: Making judgements Communication Lifelong learning skills Students are expected to develop those learning skills necessary to undertake additional studies on relevant topics in microeconomics and corporate finance with a high degree of autonomy. During the course, students are encouraged to investigate further any topics of major interest, by consulting supplementary academic publications, specialized books, and internet sites. These capabilities are tested and evaluated in the final written exam and possibly in the oral exam, where students may have to discuss and solve some new problems based on the topics and material covered in class. | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING |
2nd year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1051502 | ADVANCED ENERGY CONVERSION SYSTEM | 1st | 9 | ING-IND/09 | ENG | |
Educational objectives Objectives | |||||
Elective course | 2nd | 6 | N/D | ITA | |
AAF1016 | Final exam | 2nd | 18 | N/D | ITA | |
Educational objectives The candidate produces an original research work with experimental character, backed by appropriated maps and illustrations, by which he demonstrates that he has acquired the ability to manage and to elaborate on his own the skills gained during the theoretical and methodological study, with special regard to the search of bibliographic and cartographic sources, data collection, management and processing of statistical data, critical thinking and capacity of personal elaboration. | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING |
Optional groups
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
AAF2435 | LAB OF DECISION SCIENCE | 1st | 1st | 3 | N/D | ENG |
Educational objectives The course aims to provide practical tools necessary to critically evaluate and deal with engineering and economic models numerically. | |||||
AAF1896 | LAB OF ENGINEERING TRIBOLOGY | 2nd | 1st | 3 | N/D | ENG |
Educational objectives Apply the acquired knowledge on tribology for the design of mechanical systems and the analysis of tribology problems. Learn to use simulation tools (experimental or numerical) in a critical way, to analyse and propose solutions to the friction and wear problems within mechanical systems. Being able to develop a project of analysis and / or solution of an industrial problem related to tribology. | |||||
AAF1955 | LAB OF AUTONOMOUS DRIVING: FORMULA STUDENT COMPETITIONS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives To provide theoretical and practical tools to design, manufacture and race a formula-style autonomous driving vehicle eligible to take part to Formula Student international series into the DV (Driverless Vehicles) class. | |||||
AAF1044 | Training | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1041 | STAGE | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1152 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1149 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1482 | Laboratory of Machines | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Measurements of Fluid Machine Performances | |||||
AAF1479 | LABORATORY OF VIBRATION MECHANICS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Goal of this lab is that offering to the sudent a practical experience on the acquisition, processing andanalysis of experimental data obtained from a vibrating structure. The experimental data are subsequentlycompared with numerical data obtained from a finite element model. | |||||
AAF1478 | Laboratory for technology Innovation | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The Laboratory aims to | |||||
AAF1743 | LAB OF STRUCTURAL ANALYSIS IN METAL MATERIALS | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The frequency in the laboratory will lead the students to achieve the following objectives : 1 ) Use of an X-ray diffractometer for the collection of spectra from samples of metal alloy . 2 ) Characterization of the metal structure of the observed samples . 3 ) Recognition of the phases present in the metal material . 4 ) Characterization of the possible states of deformation present | |||||
AAF1844 | LAB OF ADVANCED METHODS IN MECHANICAL DESIGN | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Advanced applications on solid and surface modeling, computer aided technologies, reverse engineering reconstructions, virtual prototyping and optimization | |||||
AAF1825 | LABORATORY POWER PLANTS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives This Laboratory aims to connect the theoretical arguments considered in the course of Centrali Termiche and industrial applications. This is done also by developing small design projects or by considering effective conditions. | |||||
AAF1964 | Lab of mechatronics | 1st | 2nd | 3 | N/D | ENG |
Educational objectives The course provides the necessary tools to study the dynamics of EMS-Electromechanical Systems and their control, including systems of rigid bodies. Applications to mechatronic systems are approached in the course. | |||||
AAF1951 | LAB OF SIGNAL ANALYSIS AND MECHATRONICS | 1st | 2nd | 3 | N/D | ENG |
Educational objectives Course goals Signal processing algorithms are embedded nearly in every application that involves natural signal or data analysis and/or synthesis. The aim of this course is to provide a basic, yet comprehensive, introduction to the mathematical background to support the analysis of measurements as well as diagnosis and control of machines. The course reviews some of the most important mathematical methods of digital signal processing related to mechanical engineering, such as Discrete Fourier Transform (DFT), Short Time Fourier Transform (STFT), Wavelet Transform, Hilbert Transform and the Empirical Mode Decomposition, for the calculation of signal features in time and frequency domains. Exercises from example applications and on numerical signal processing are provided: the student will be guided to analyze real life signals with the aid of Matlab software. At the end of the course, the student will be able to evaluate the effects of signal processing and analysis on measurement data from real life machines and structures. These skills are essential e.g. in machine diagnostics, control engineering, machine automation and robotics. After the course, the student: • Is familiar with some of the most important methods of signal analysis in the field of mechanical engineering. In doing that, the student will be introduced to Matlab numerical computing environment, also with the support of shared codes and worked examples. The student will be guided to: | |||||
AAF2267 | LABORATORY OF MEASUREMENTS FOR THE CONSERVATION AND RESTORATION OF CULTURAL HERITAGE | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The objective of the laboratory focuses on the application of knowledge of traditional measurement systems and some of the advanced and distributed monitoring technologies for the conservation and restoration of cultural heritage. The laboratory or ON-field experimental activities will be defined individually or in groups with the students. Eligibility will be awarded after a personal presentation of the activities carried out. | |||||
AAF1484 | Laboratory for structures calculation | 2nd | 1st | 3 | N/D | ITA |
Educational objectives To provide students with the basics of of computerized calculation of frames of beams, either naturally discrete or discretized. | |||||
AAF1535 | Laboratory for propulsion Systems and Vehicle Dynamics | 2nd | 1st | 6 | N/D | ITA |
Educational objectives
Give the student the basic knowledge on the use of | |||||
AAF1773 | RENEWABLE ENERGY SYSTEM DESIGN | 2nd | 1st | 3 | N/D | ENG |
Educational objectives RENEWABLE ENERGY SYSTEM DESIGN has the general training objective: an effective design of plants for distributed generation in urban and rural areas. | |||||
AAF1536 | Lab for Design and Building autovehicles | 2nd | 1st | 6 | N/D | ITA |
Educational objectives To provide theoretical and | |||||
AAF1491 | Laboratory for Safety in industrial Plants | 2nd | 1st | 3 | N/D | ITA |
Educational objectives
The particularly Prerequisite for | |||||
AAF1735 | LAB OF TURBULENCE AND COMBUSTION | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The Lab of Turbulence and Combustion is an integrative activity which introduces the student to the operational aspects related to the techniques of investigation and characterization of turbulent flames. The Lab offers to students the opportunity to learn the techniques used in modern research laboratories dedicated to the optimization of combustion processes, to develop advanced investigation skills and to apply the main experimental and numerical methods to the study of turbulent combustion. | |||||
AAF1486 | Laboratory for Vehicle aerodynamics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The Aerodynamics of Vehicle Laboratory is a supplementary activity (3CFU) aimed to introduce | |||||
AAF2436 | LAB OF ADVANCED FINITE ELEMENT MODELLING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to develop skills in the ability of applying advanced knowledge about finite element calculations. | |||||
AAF1534 | INTRODUCTION TO MODELLING AND SIMULATION OF TURBOLENT TRANSPORT PROCESSES | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives
To introduce | |||||
AAF1488 | Lab for Measurements for Biomechanics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to provide students with the basic knowledge needed to properly use the state of | |||||
AAF1480 | Laboratory for Noise and Vibrations Control | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives
The laboratory is | |||||
AAF1984 | LAB OF ADDITIVE MANUFACTURING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives Provide the theoretical and practical abilities to fabricate a functional component via Additive Manufacturing technologies. In particular: - cabability to manage, repair and process a 3D model; - choice of the process parameters taking into account the post-processing and the further secondary operations; - spread among several secondary operations typical of AM technologies; predict the cost and time needed for the entire process. | |||||
AAF1963 | Lab of vehicle system dynamics and mechatronics | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The course focuses on multibody modeling of vehicles and its subsystems. The student will acquire the fundamental elements to be able to develop and design a complete car or motorcycle by including the modeling of suspension elements with variable parameters and control systems for the implementation of actuators. | |||||
AAF2069 | LAB OF INDUSTRY 4.0 | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The course gives on-field experience to apply technologies of Industry 4.0. The course, as an extension of the Smart Factory course, develops one of its topics through the application of simulation models, business intelligence, machine learning, natural language processing, or defect detection and recognition. | |||||
AAF1953 | LAB OF VIRTUAL REALITY FOR HAPTIC EXPERIENCE | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Aim of the laboratory is developing virtual reality environments that through real time simulations may be interfaced with haptic sensors. | |||||
AAF1979 | LAB OF AUTONOMOUS DRIVING: CARS AND SWARMS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives The course aims to understand and develop advanced systems for assistance in driving autonomous vehicles. The student will acquire basic knowledge on devices and algorithms used by intelligent vehicles with particular attention to the ADAS systems. The student will be able to test specific sensors on electronic boards by implementing customized control logics. It will be possible to simulate the output of the camera, radar and LIDAR sensors in a 3D environment and apply machine learning and deep learning algorithms. |
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
1021788 | MATHEMATICAL PHYSICS | 1st | 1st | 6 | MAT/07 | ITA |
Educational objectives A) Learning of basic knowledge of mathematical models of Continuum Mechanics based on Partial Differential Equations. Learning of the main perturbative methods: direct perturbative method, multiple scales and boundary layers. B) Learning to set up and analyze problems for Partial Differential Equations. Learning to use the main perturbative methods when small parameters appear, also by means of qualitative analysis. D), E) Development of the ability to understand qualitatively the solution, to exchange the results and to seek help in textbooks or from experts. In this connection, construction and graphical visualization of solutions obtained by symbolic calculus (MUPAD toolbox for MATLAB). | |||||
1021796 | Differential geometry | 1st | 1st | 6 | MAT/03 | ITA |
Educational objectives Knowledge and understanding: Knowledge and understanding of basic concepts of Be able to calculate the Frenet apparatus of a curve | |||||
1021834 | Mathematical models for engineering | 1st | 1st | 6 | MAT/05 | ITA |
Educational objectives We expect the student to learn the use of sequences and series of functions (in particular Fourier and power series) and to reconstruct signals via Laplace tranform. | |||||
1041454 | DYNAMICS OF ELECTRICAL MACHINES AND DRIVES | 2nd | 1st | 6 | ING-IND/32 | ENG |
Educational objectives The subject aims to guide the student in understanding the principles of operation of AC machines at variable speed. The module will provide methods to analyze the behaviour of AC drives both in steady state and during transients. Finally, it will give the student knowledge on how torque is controlled in these machines. | |||||
1021838 | METALLURGICAL AND METALLOGRAPHIC METHODOLOGIES | 2nd | 1st | 6 | ING-IND/21 | ITA |
Educational objectives The course provides knowledge about the origin and control of defects in metal structures, from the manufacture of materials or processing technologiesFor their control are called the basic physical principles and applied methods: radiography, ultrasonic, penetrant liquid and magnetic methods. | |||||
1047503 | TURBULENCE AND COMBUSTION | 2nd | 1st | 6 | ING-IND/06 | ENG |
Educational objectives Leading the student to the clear comprehension of the basic mechanisms of turbulence in free and wall bounded flows. Leading the student to the clear comprehension of the basic mechanisms of turbulent combustion. Providing critical knowledge of the different regimes of turbulent combustion and of the effect of turbulence in reactive flows. Developing basic skill for combustor design. |
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
10592758 | MECHATRONICS AND VIBRATIONS | 1st | 2nd | 9 | ING-IND/13 | ENG |
Educational objectives In the course program, the dynamics of EMS-Electromechanical Systems and their control are analyzed in details, including systems of rigid bodies and of continuous elastic structures (rod, beam and plates). Applications to vibration analysis and their control, smart structures and mechatronic systems, are examples approached in the course. | |||||
1021948 | MACHINE INFRASTRUCTURE | 2nd | 1st | 9 | ING-IND/14 | ITA |
Educational objectives The class provides further insights on the mechanical behavior of industrial engineering materials and on the structural design and verification of several components and mechanical system broadly used in Machine Design. It is the natural continuation of the Design of Machine Elements course held during the last year of the Bachelor in Mechanical Engineering. |
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
10606672 | AUTOMOTIVE PROPULSION SYSTEM | 1st | 2nd | 6 | ING-IND/08 | ITA |
Educational objectives Understanding the operation of internal combustion engines both in terms of thermodynamic and mechanical. | |||||
1022015 | SPECIAL TECHNOLOGIES | 1st | 2nd | 9 | ING-IND/16 | ITA |
Educational objectives The course is aimed at the creation of a knowledge-base, in the | |||||
1022657 | MANAGMENT OF INDUSTRIAL PLANTS | 2nd | 1st | 9 | ING-IND/17 | ITA |
Educational objectives OBJECTIVES. The course gives the key competences of operations management, both from an organisational-management and a technical-operational point of view. The expected learning outcomes are the capabilities to analyse the relationship of market and supply chain, the role and processes of the company within the supply chain, and the applying knowledge and understanding of the methodologies for production and inventory management. | |||||
1044017 | FLUID MACHINERY AND ENERGY SYSTEM DIAGNOSTICS | 2nd | 1st | 6 | ING-IND/08 | ITA |
Educational objectives The aim of this course is to give a systematic view of methods used in industrial diagnostic with a special interest on energy conversion systems and fluid machineries. The general objectives being the methodologies to failure mode analyses, fault detection and isolation. A peculiar attention will be given to AI based methods for the analysis of big-data collected in sensor networks. | |||||
1021816 | ENVIRONMENT MACHINE INTERACTION | 2nd | 1st | 6 | ING-IND/09 | ITA |
Educational objectives The course offers students the study methodologies in order to fully understand the energy transition in progress and in order to evaluate the interactions produced on the environment. The course aims to provide the student with the elements necessary to understand the main effects of engine on the environment both on a global as well as on a punctual scale, together with the means and strategies which can be used in order to contain them (environmental sustainability). The aim is to provide the necessary knowledge in order to identify polluting emissions generated by energy production systems, their harmful effects, and the best currently available technical solutions (BAT) for their control. In particular: | |||||
10592760 | TURBOMACHINERY | 2nd | 1st | 6 | ING-IND/08 | ITA |
Educational objectives The course has the following educational objectives: | |||||
1017832 | THERMAL POWER STATIONS | 2nd | 2nd | 6 | ING-IND/09 | ITA |
Educational objectives This course is intended to help graduate students build a basic frame of | |||||
1047513 | COMPUTATIONAL THERMO-FLUIDS ANALYSIS IN FLUID MACHINERY | 2nd | 2nd | 6 | ING-IND/09 | ENG |
Educational objectives To assess knowledge in the modelling and simulation of thermo-fluid problems in industrial applications To develop proficiency in the use and development of computational thermo-fluid-dynamics tools. |
1st year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1044962 | CONTROL SYSTEMS | 1st | 9 | ING-INF/04 | ITA | |
Educational objectives General objectives The course provides the basic tools for analyzing and designing feedback controllers for linear dynamic systems, using both state-space and input-output descriptions. Specific objectives Knowledge and understanding: Apply knowledge and understanding: Critical and judgment skills: Communication skills: Learning ability: | |||||
1044458 | Fluid machinery in energy conversion systems | 1st | 9 | ING-IND/08 | ENG | |
Educational objectives FMECS | |||||
1021983 | MECHANICAL AND THERMAL MEASUREMENTS | 1st | 9 | ING-IND/12 | ITA | |
Educational objectives Giving the basis to design correctly a measurement chain according to the requirements both of test drivers and of users. Teaching the students the most significant experimental methods and devices for mechanical and thermal measurements. Let graduate fellows operate experimentally in mechanical industry. | |||||
Elective course | 1st | 6 | N/D | ITA | |
1055047 | Economics of technology and management | 2nd | 6 | ING-IND/35 | ENG | |
Educational objectives Knowledge and understanding The course deals with the decision making processes of firms. In particular, students are expected to learn the basic principles of Applying knowledge and understanding Students will be able to apply basic methods and models of microeconomics, organization theory and corporate finance in order to: Making judgements Communication Lifelong learning skills Students are expected to develop those learning skills necessary to undertake additional studies on relevant topics in microeconomics and corporate finance with a high degree of autonomy. During the course, students are encouraged to investigate further any topics of major interest, by consulting supplementary academic publications, specialized books, and internet sites. These capabilities are tested and evaluated in the final written exam and possibly in the oral exam, where students may have to discuss and solve some new problems based on the topics and material covered in class. | |||||
1022015 | SPECIAL TECHNOLOGIES | 2nd | 9 | ING-IND/16 | ITA | |
Educational objectives The course is aimed at the creation of a knowledge-base, in the | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING |
2nd year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1022657 | MANAGMENT OF INDUSTRIAL PLANTS | 1st | 9 | ING-IND/17 | ITA | |
Educational objectives OBJECTIVES. The course gives the key competences of operations management, both from an organisational-management and a technical-operational point of view. The expected learning outcomes are the capabilities to analyse the relationship of market and supply chain, the role and processes of the company within the supply chain, and the applying knowledge and understanding of the methodologies for production and inventory management. | |||||
Elective course | 2nd | 6 | N/D | ITA | |
AAF1016 | Final exam | 2nd | 18 | N/D | ITA | |
Educational objectives The candidate produces an original research work with experimental character, backed by appropriated maps and illustrations, by which he demonstrates that he has acquired the ability to manage and to elaborate on his own the skills gained during the theoretical and methodological study, with special regard to the search of bibliographic and cartographic sources, data collection, management and processing of statistical data, critical thinking and capacity of personal elaboration. | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING |
Optional groups
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
AAF2435 | LAB OF DECISION SCIENCE | 1st | 1st | 3 | N/D | ENG |
Educational objectives The course aims to provide practical tools necessary to critically evaluate and deal with engineering and economic models numerically. | |||||
AAF1896 | LAB OF ENGINEERING TRIBOLOGY | 2nd | 1st | 3 | N/D | ENG |
Educational objectives Apply the acquired knowledge on tribology for the design of mechanical systems and the analysis of tribology problems. Learn to use simulation tools (experimental or numerical) in a critical way, to analyse and propose solutions to the friction and wear problems within mechanical systems. Being able to develop a project of analysis and / or solution of an industrial problem related to tribology. | |||||
AAF1955 | LAB OF AUTONOMOUS DRIVING: FORMULA STUDENT COMPETITIONS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives To provide theoretical and practical tools to design, manufacture and race a formula-style autonomous driving vehicle eligible to take part to Formula Student international series into the DV (Driverless Vehicles) class. | |||||
AAF1044 | Training | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1041 | STAGE | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1152 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1149 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1482 | Laboratory of Machines | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Measurements of Fluid Machine Performances | |||||
AAF1479 | LABORATORY OF VIBRATION MECHANICS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Goal of this lab is that offering to the sudent a practical experience on the acquisition, processing andanalysis of experimental data obtained from a vibrating structure. The experimental data are subsequentlycompared with numerical data obtained from a finite element model. | |||||
AAF1478 | Laboratory for technology Innovation | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The Laboratory aims to | |||||
AAF1743 | LAB OF STRUCTURAL ANALYSIS IN METAL MATERIALS | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The frequency in the laboratory will lead the students to achieve the following objectives : 1 ) Use of an X-ray diffractometer for the collection of spectra from samples of metal alloy . 2 ) Characterization of the metal structure of the observed samples . 3 ) Recognition of the phases present in the metal material . 4 ) Characterization of the possible states of deformation present | |||||
AAF1844 | LAB OF ADVANCED METHODS IN MECHANICAL DESIGN | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Advanced applications on solid and surface modeling, computer aided technologies, reverse engineering reconstructions, virtual prototyping and optimization | |||||
AAF1825 | LABORATORY POWER PLANTS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives This Laboratory aims to connect the theoretical arguments considered in the course of Centrali Termiche and industrial applications. This is done also by developing small design projects or by considering effective conditions. | |||||
AAF1964 | Lab of mechatronics | 1st | 2nd | 3 | N/D | ENG |
Educational objectives The course provides the necessary tools to study the dynamics of EMS-Electromechanical Systems and their control, including systems of rigid bodies. Applications to mechatronic systems are approached in the course. | |||||
AAF1951 | LAB OF SIGNAL ANALYSIS AND MECHATRONICS | 1st | 2nd | 3 | N/D | ENG |
Educational objectives Course goals Signal processing algorithms are embedded nearly in every application that involves natural signal or data analysis and/or synthesis. The aim of this course is to provide a basic, yet comprehensive, introduction to the mathematical background to support the analysis of measurements as well as diagnosis and control of machines. The course reviews some of the most important mathematical methods of digital signal processing related to mechanical engineering, such as Discrete Fourier Transform (DFT), Short Time Fourier Transform (STFT), Wavelet Transform, Hilbert Transform and the Empirical Mode Decomposition, for the calculation of signal features in time and frequency domains. Exercises from example applications and on numerical signal processing are provided: the student will be guided to analyze real life signals with the aid of Matlab software. At the end of the course, the student will be able to evaluate the effects of signal processing and analysis on measurement data from real life machines and structures. These skills are essential e.g. in machine diagnostics, control engineering, machine automation and robotics. After the course, the student: • Is familiar with some of the most important methods of signal analysis in the field of mechanical engineering. In doing that, the student will be introduced to Matlab numerical computing environment, also with the support of shared codes and worked examples. The student will be guided to: | |||||
AAF2267 | LABORATORY OF MEASUREMENTS FOR THE CONSERVATION AND RESTORATION OF CULTURAL HERITAGE | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The objective of the laboratory focuses on the application of knowledge of traditional measurement systems and some of the advanced and distributed monitoring technologies for the conservation and restoration of cultural heritage. The laboratory or ON-field experimental activities will be defined individually or in groups with the students. Eligibility will be awarded after a personal presentation of the activities carried out. | |||||
AAF1484 | Laboratory for structures calculation | 2nd | 1st | 3 | N/D | ITA |
Educational objectives To provide students with the basics of of computerized calculation of frames of beams, either naturally discrete or discretized. | |||||
AAF1535 | Laboratory for propulsion Systems and Vehicle Dynamics | 2nd | 1st | 6 | N/D | ITA |
Educational objectives
Give the student the basic knowledge on the use of | |||||
AAF1773 | RENEWABLE ENERGY SYSTEM DESIGN | 2nd | 1st | 3 | N/D | ENG |
Educational objectives RENEWABLE ENERGY SYSTEM DESIGN has the general training objective: an effective design of plants for distributed generation in urban and rural areas. | |||||
AAF1536 | Lab for Design and Building autovehicles | 2nd | 1st | 6 | N/D | ITA |
Educational objectives To provide theoretical and | |||||
AAF1491 | Laboratory for Safety in industrial Plants | 2nd | 1st | 3 | N/D | ITA |
Educational objectives
The particularly Prerequisite for | |||||
AAF1735 | LAB OF TURBULENCE AND COMBUSTION | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The Lab of Turbulence and Combustion is an integrative activity which introduces the student to the operational aspects related to the techniques of investigation and characterization of turbulent flames. The Lab offers to students the opportunity to learn the techniques used in modern research laboratories dedicated to the optimization of combustion processes, to develop advanced investigation skills and to apply the main experimental and numerical methods to the study of turbulent combustion. | |||||
AAF1486 | Laboratory for Vehicle aerodynamics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The Aerodynamics of Vehicle Laboratory is a supplementary activity (3CFU) aimed to introduce | |||||
AAF2436 | LAB OF ADVANCED FINITE ELEMENT MODELLING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to develop skills in the ability of applying advanced knowledge about finite element calculations. | |||||
AAF1534 | INTRODUCTION TO MODELLING AND SIMULATION OF TURBOLENT TRANSPORT PROCESSES | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives
To introduce | |||||
AAF1488 | Lab for Measurements for Biomechanics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to provide students with the basic knowledge needed to properly use the state of | |||||
AAF1480 | Laboratory for Noise and Vibrations Control | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives
The laboratory is | |||||
AAF1984 | LAB OF ADDITIVE MANUFACTURING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives Provide the theoretical and practical abilities to fabricate a functional component via Additive Manufacturing technologies. In particular: - cabability to manage, repair and process a 3D model; - choice of the process parameters taking into account the post-processing and the further secondary operations; - spread among several secondary operations typical of AM technologies; predict the cost and time needed for the entire process. | |||||
AAF1963 | Lab of vehicle system dynamics and mechatronics | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The course focuses on multibody modeling of vehicles and its subsystems. The student will acquire the fundamental elements to be able to develop and design a complete car or motorcycle by including the modeling of suspension elements with variable parameters and control systems for the implementation of actuators. | |||||
AAF2069 | LAB OF INDUSTRY 4.0 | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The course gives on-field experience to apply technologies of Industry 4.0. The course, as an extension of the Smart Factory course, develops one of its topics through the application of simulation models, business intelligence, machine learning, natural language processing, or defect detection and recognition. | |||||
AAF1953 | LAB OF VIRTUAL REALITY FOR HAPTIC EXPERIENCE | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Aim of the laboratory is developing virtual reality environments that through real time simulations may be interfaced with haptic sensors. | |||||
AAF1979 | LAB OF AUTONOMOUS DRIVING: CARS AND SWARMS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives The course aims to understand and develop advanced systems for assistance in driving autonomous vehicles. The student will acquire basic knowledge on devices and algorithms used by intelligent vehicles with particular attention to the ADAS systems. The student will be able to test specific sensors on electronic boards by implementing customized control logics. It will be possible to simulate the output of the camera, radar and LIDAR sensors in a 3D environment and apply machine learning and deep learning algorithms. |
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
10616523 | OPTIMIZATION AND DECISION SCIENCE | 1st | 1st | 6 | MAT/09 | ENG |
Educational objectives Providing knowledge about optimization and decision science problems, providing expertise on the characteristics of the problems and mathematical optimization methods adopted in the engineering field, and proposing first examples of implementation and use. | |||||
1041454 | DYNAMICS OF ELECTRICAL MACHINES AND DRIVES | 2nd | 1st | 6 | ING-IND/32 | ENG |
Educational objectives The subject aims to guide the student in understanding the principles of operation of AC machines at variable speed. The module will provide methods to analyze the behaviour of AC drives both in steady state and during transients. Finally, it will give the student knowledge on how torque is controlled in these machines. | |||||
1021838 | METALLURGICAL AND METALLOGRAPHIC METHODOLOGIES | 2nd | 1st | 6 | ING-IND/21 | ITA |
Educational objectives The course provides knowledge about the origin and control of defects in metal structures, from the manufacture of materials or processing technologiesFor their control are called the basic physical principles and applied methods: radiography, ultrasonic, penetrant liquid and magnetic methods. | |||||
1038263 | Project management | 2nd | 2nd | 6 | ING-IND/35 | ITA |
Educational objectives The course clarifies the founding principles, the scope and the fundamental tools and methodologies of Project Management (PM).Starting from the concept of integrated management of projects, all the main methods for managing the performance variables of quality, time and cost will be proposed.In line with the main standard processes of Project Management, the internationally standardized Project Management terminology will be used. |
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
10592758 | MECHATRONICS AND VIBRATIONS | 1st | 2nd | 9 | ING-IND/13 | ENG |
Educational objectives In the course program, the dynamics of EMS-Electromechanical Systems and their control are analyzed in details, including systems of rigid bodies and of continuous elastic structures (rod, beam and plates). Applications to vibration analysis and their control, smart structures and mechatronic systems, are examples approached in the course. | |||||
1055978 | Measurement for mechanical systems and industry | 1st | 2nd | 6 | ING-IND/12 | ENG |
Educational objectives This class will provide the students with the ground knowledge to correctly design and set up a measurement chain or system, taking in account the specific needs of the instrument user. Specific attention will be given to applications aimed at mechanical production and manufacturing industry. The class comprises a number of laboratory lessons, which explain and go into the main experimental techniques and are considered a fundamental part of the course. | |||||
1045058 | MECHANICS OF ROBOT MANIPULATORS | 1st | 2nd | 6 | ING-IND/13 | ENG |
Educational objectives This course is addressed to kinematics and dynamics of industrial | |||||
1044963 | SAFETY AND MAINTENANCE FOR INDUSTRIAL SYSTEMS | 1st | 2nd | 6 | ING-IND/17 | ENG |
Educational objectives The course aims to provide the necessary knowledge to the design and management of safety and maintenance of industrial systems, considered as complex production systems.To this end, the course deals with the handling of hazardous phenomena that can occur in a productive activity, provides information on laws and existing good practice in this regard and introduces methodologies for systems analysis useful to anticipate and manage unexpected phenomena in the operation machinery, equipment and facilities.Particular emphasis is given to the services to guarantee the safety of any system, especially in view of some significant trends (facility management, global services and outsourcing). | |||||
1056573 | SMART FACTORY | 1st | 2nd | 6 | ING-IND/17 | ITA |
Educational objectives The course aims to provide the knowledge bases of the Smart Factories in the context of Industry 4.0 which is characterized as the Fourth Industrial Revolution through the analysis of the economic and technological scenario, the identification and classification of intervention key areas, the processes for a strategy 4.0 implementation, the definition of organizational models, the identification of design and management issues. Expected Learning Outcomes. Knowledge and understanding: Knowledge of the structural and operating characteristics of Smart Factories within the framework of Industry 4.0. Applying knowledge and understanding: Ability to develop analysis, model problems and identify best techniques for implementing Smart Production in a Smart Factory. The course requires preparation of a technical report (usually prepared in small working groups self-managed by students); the course also aims to promote the development of skills to apply the knowledge acquired through independent learning and teamworking, making independent judgment and communication skills. | |||||
1021948 | MACHINE INFRASTRUCTURE | 2nd | 1st | 9 | ING-IND/14 | ITA |
Educational objectives The class provides further insights on the mechanical behavior of industrial engineering materials and on the structural design and verification of several components and mechanical system broadly used in Machine Design. It is the natural continuation of the Design of Machine Elements course held during the last year of the Bachelor in Mechanical Engineering. | |||||
1047505 | ADDITIVE MANUFACTURING AND PRODUCTION SYSTEMS | 2nd | 1st | 6 | ING-IND/16 | ENG |
Educational objectives Student must will able to: | |||||
1017645 | MANAGEMENT OF QUALITY | 2nd | 1st | 6 | ING-IND/17 | ITA |
Educational objectives The course aims to provide the basic knowledge of Quality in process management for organizations, through the definition and historical evolution of the concept (from Quality Control to Total Quality Management), the regulatory framework, methodologies for analysis and improvement. In particular, the course presents an applicative focus on process mapping and management methodologies and on the Lean Six Sigma methodology for continuous improvement. In addition, the main elements of the Quality Management Systems (UNI EN ISO 9001) are presented and addressed. | |||||
1017664 | production planning and control | 2nd | 1st | 6 | ING-IND/16 | ITA |
Educational objectives Gain cognitive and technical tools for statistical process control.Acquire methodologies of design of experiments for process improvementGain tools for acceptance sampling of a lotRisultati di apprendimento attesi (Inglese):Student must be able to:- plan and execute a statistical process control by control charts- plan a experiments campaign in order to achieve a technological model of a process- design a lot acceptance control |
1st year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1044962 | CONTROL SYSTEMS | 1st | 9 | ING-INF/04 | ENG | |
Educational objectives General objectives The course provides the basic tools for analyzing and designing feedback controllers for linear dynamic systems, using both state-space and input-output descriptions. Specific objectives Knowledge and understanding: Apply knowledge and understanding: Critical and judgment skills: Communication skills: Learning ability: | |||||
1044458 | Fluid machinery in energy conversion systems | 1st | 9 | ING-IND/08 | ENG | |
Educational objectives FMECS | |||||
1021983 | MECHANICAL AND THERMAL MEASUREMENTS | 1st | 9 | ING-IND/12 | ITA | |
Educational objectives Giving the basis to design correctly a measurement chain according to the requirements both of test drivers and of users. Teaching the students the most significant experimental methods and devices for mechanical and thermal measurements. Let graduate fellows operate experimentally in mechanical industry. | |||||
Elective course | 1st | 6 | N/D | ITA | |
1055047 | Economics of technology and management | 2nd | 6 | ING-IND/35 | ENG | |
Educational objectives Knowledge and understanding The course deals with the decision making processes of firms. In particular, students are expected to learn the basic principles of Applying knowledge and understanding Students will be able to apply basic methods and models of microeconomics, organization theory and corporate finance in order to: Making judgements Communication Lifelong learning skills Students are expected to develop those learning skills necessary to undertake additional studies on relevant topics in microeconomics and corporate finance with a high degree of autonomy. During the course, students are encouraged to investigate further any topics of major interest, by consulting supplementary academic publications, specialized books, and internet sites. These capabilities are tested and evaluated in the final written exam and possibly in the oral exam, where students may have to discuss and solve some new problems based on the topics and material covered in class. | |||||
10592758 | MECHATRONICS AND VIBRATIONS | 2nd | 9 | ING-IND/13 | ENG | |
Educational objectives In the course program, the dynamics of EMS-Electromechanical Systems and their control are analyzed in details, including systems of rigid bodies and of continuous elastic structures (rod, beam and plates). Applications to vibration analysis and their control, smart structures and mechatronic systems, are examples approached in the course. | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING |
2nd year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1021948 | MACHINE INFRASTRUCTURE | 1st | 9 | ING-IND/14 | ITA | |
Educational objectives The class provides further insights on the mechanical behavior of industrial engineering materials and on the structural design and verification of several components and mechanical system broadly used in Machine Design. It is the natural continuation of the Design of Machine Elements course held during the last year of the Bachelor in Mechanical Engineering. | |||||
Elective course | 2nd | 6 | N/D | ITA | |
AAF1016 | Final exam | 2nd | 18 | N/D | ITA | |
Educational objectives The candidate produces an original research work with experimental character, backed by appropriated maps and illustrations, by which he demonstrates that he has acquired the ability to manage and to elaborate on his own the skills gained during the theoretical and methodological study, with special regard to the search of bibliographic and cartographic sources, data collection, management and processing of statistical data, critical thinking and capacity of personal elaboration. | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING |
Optional groups
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
AAF2435 | LAB OF DECISION SCIENCE | 1st | 1st | 3 | N/D | ENG |
Educational objectives The course aims to provide practical tools necessary to critically evaluate and deal with engineering and economic models numerically. | |||||
AAF1896 | LAB OF ENGINEERING TRIBOLOGY | 2nd | 1st | 3 | N/D | ENG |
Educational objectives Apply the acquired knowledge on tribology for the design of mechanical systems and the analysis of tribology problems. Learn to use simulation tools (experimental or numerical) in a critical way, to analyse and propose solutions to the friction and wear problems within mechanical systems. Being able to develop a project of analysis and / or solution of an industrial problem related to tribology. | |||||
AAF1955 | LAB OF AUTONOMOUS DRIVING: FORMULA STUDENT COMPETITIONS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives To provide theoretical and practical tools to design, manufacture and race a formula-style autonomous driving vehicle eligible to take part to Formula Student international series into the DV (Driverless Vehicles) class. | |||||
AAF1044 | Training | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1041 | STAGE | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1152 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1149 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1482 | Laboratory of Machines | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Measurements of Fluid Machine Performances | |||||
AAF1479 | LABORATORY OF VIBRATION MECHANICS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Goal of this lab is that offering to the sudent a practical experience on the acquisition, processing andanalysis of experimental data obtained from a vibrating structure. The experimental data are subsequentlycompared with numerical data obtained from a finite element model. | |||||
AAF1478 | Laboratory for technology Innovation | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The Laboratory aims to | |||||
AAF1743 | LAB OF STRUCTURAL ANALYSIS IN METAL MATERIALS | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The frequency in the laboratory will lead the students to achieve the following objectives : 1 ) Use of an X-ray diffractometer for the collection of spectra from samples of metal alloy . 2 ) Characterization of the metal structure of the observed samples . 3 ) Recognition of the phases present in the metal material . 4 ) Characterization of the possible states of deformation present | |||||
AAF1844 | LAB OF ADVANCED METHODS IN MECHANICAL DESIGN | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Advanced applications on solid and surface modeling, computer aided technologies, reverse engineering reconstructions, virtual prototyping and optimization | |||||
AAF1825 | LABORATORY POWER PLANTS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives This Laboratory aims to connect the theoretical arguments considered in the course of Centrali Termiche and industrial applications. This is done also by developing small design projects or by considering effective conditions. | |||||
AAF1964 | Lab of mechatronics | 1st | 2nd | 3 | N/D | ENG |
Educational objectives The course provides the necessary tools to study the dynamics of EMS-Electromechanical Systems and their control, including systems of rigid bodies. Applications to mechatronic systems are approached in the course. | |||||
AAF1951 | LAB OF SIGNAL ANALYSIS AND MECHATRONICS | 1st | 2nd | 3 | N/D | ENG |
Educational objectives Course goals Signal processing algorithms are embedded nearly in every application that involves natural signal or data analysis and/or synthesis. The aim of this course is to provide a basic, yet comprehensive, introduction to the mathematical background to support the analysis of measurements as well as diagnosis and control of machines. The course reviews some of the most important mathematical methods of digital signal processing related to mechanical engineering, such as Discrete Fourier Transform (DFT), Short Time Fourier Transform (STFT), Wavelet Transform, Hilbert Transform and the Empirical Mode Decomposition, for the calculation of signal features in time and frequency domains. Exercises from example applications and on numerical signal processing are provided: the student will be guided to analyze real life signals with the aid of Matlab software. At the end of the course, the student will be able to evaluate the effects of signal processing and analysis on measurement data from real life machines and structures. These skills are essential e.g. in machine diagnostics, control engineering, machine automation and robotics. After the course, the student: • Is familiar with some of the most important methods of signal analysis in the field of mechanical engineering. In doing that, the student will be introduced to Matlab numerical computing environment, also with the support of shared codes and worked examples. The student will be guided to: | |||||
AAF2267 | LABORATORY OF MEASUREMENTS FOR THE CONSERVATION AND RESTORATION OF CULTURAL HERITAGE | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The objective of the laboratory focuses on the application of knowledge of traditional measurement systems and some of the advanced and distributed monitoring technologies for the conservation and restoration of cultural heritage. The laboratory or ON-field experimental activities will be defined individually or in groups with the students. Eligibility will be awarded after a personal presentation of the activities carried out. | |||||
AAF1484 | Laboratory for structures calculation | 2nd | 1st | 3 | N/D | ITA |
Educational objectives To provide students with the basics of of computerized calculation of frames of beams, either naturally discrete or discretized. | |||||
AAF1535 | Laboratory for propulsion Systems and Vehicle Dynamics | 2nd | 1st | 6 | N/D | ITA |
Educational objectives
Give the student the basic knowledge on the use of | |||||
AAF1773 | RENEWABLE ENERGY SYSTEM DESIGN | 2nd | 1st | 3 | N/D | ENG |
Educational objectives RENEWABLE ENERGY SYSTEM DESIGN has the general training objective: an effective design of plants for distributed generation in urban and rural areas. | |||||
AAF1536 | Lab for Design and Building autovehicles | 2nd | 1st | 6 | N/D | ITA |
Educational objectives To provide theoretical and | |||||
AAF1491 | Laboratory for Safety in industrial Plants | 2nd | 1st | 3 | N/D | ITA |
Educational objectives
The particularly Prerequisite for | |||||
AAF1735 | LAB OF TURBULENCE AND COMBUSTION | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The Lab of Turbulence and Combustion is an integrative activity which introduces the student to the operational aspects related to the techniques of investigation and characterization of turbulent flames. The Lab offers to students the opportunity to learn the techniques used in modern research laboratories dedicated to the optimization of combustion processes, to develop advanced investigation skills and to apply the main experimental and numerical methods to the study of turbulent combustion. | |||||
AAF1486 | Laboratory for Vehicle aerodynamics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The Aerodynamics of Vehicle Laboratory is a supplementary activity (3CFU) aimed to introduce | |||||
AAF2436 | LAB OF ADVANCED FINITE ELEMENT MODELLING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to develop skills in the ability of applying advanced knowledge about finite element calculations. | |||||
AAF1534 | INTRODUCTION TO MODELLING AND SIMULATION OF TURBOLENT TRANSPORT PROCESSES | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives
To introduce | |||||
AAF1488 | Lab for Measurements for Biomechanics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to provide students with the basic knowledge needed to properly use the state of | |||||
AAF1480 | Laboratory for Noise and Vibrations Control | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives
The laboratory is | |||||
AAF1984 | LAB OF ADDITIVE MANUFACTURING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives Provide the theoretical and practical abilities to fabricate a functional component via Additive Manufacturing technologies. In particular: - cabability to manage, repair and process a 3D model; - choice of the process parameters taking into account the post-processing and the further secondary operations; - spread among several secondary operations typical of AM technologies; predict the cost and time needed for the entire process. | |||||
AAF1963 | Lab of vehicle system dynamics and mechatronics | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The course focuses on multibody modeling of vehicles and its subsystems. The student will acquire the fundamental elements to be able to develop and design a complete car or motorcycle by including the modeling of suspension elements with variable parameters and control systems for the implementation of actuators. | |||||
AAF2069 | LAB OF INDUSTRY 4.0 | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The course gives on-field experience to apply technologies of Industry 4.0. The course, as an extension of the Smart Factory course, develops one of its topics through the application of simulation models, business intelligence, machine learning, natural language processing, or defect detection and recognition. | |||||
AAF1953 | LAB OF VIRTUAL REALITY FOR HAPTIC EXPERIENCE | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Aim of the laboratory is developing virtual reality environments that through real time simulations may be interfaced with haptic sensors. | |||||
AAF1979 | LAB OF AUTONOMOUS DRIVING: CARS AND SWARMS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives The course aims to understand and develop advanced systems for assistance in driving autonomous vehicles. The student will acquire basic knowledge on devices and algorithms used by intelligent vehicles with particular attention to the ADAS systems. The student will be able to test specific sensors on electronic boards by implementing customized control logics. It will be possible to simulate the output of the camera, radar and LIDAR sensors in a 3D environment and apply machine learning and deep learning algorithms. |
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
1021796 | Differential geometry | 1st | 1st | 6 | MAT/03 | ITA |
Educational objectives Knowledge and understanding: Knowledge and understanding of basic concepts of Be able to calculate the Frenet apparatus of a curve | |||||
1021834 | Mathematical models for engineering | 1st | 1st | 6 | MAT/05 | ITA |
Educational objectives We expect the student to learn the use of sequences and series of functions (in particular Fourier and power series) and to reconstruct signals via Laplace tranform. | |||||
1021788 | MATHEMATICAL PHYSICS | 1st | 1st | 6 | MAT/07 | ITA |
Educational objectives A) Learning of basic knowledge of mathematical models of Continuum Mechanics based on Partial Differential Equations. Learning of the main perturbative methods: direct perturbative method, multiple scales and boundary layers. B) Learning to set up and analyze problems for Partial Differential Equations. Learning to use the main perturbative methods when small parameters appear, also by means of qualitative analysis. D), E) Development of the ability to understand qualitatively the solution, to exchange the results and to seek help in textbooks or from experts. In this connection, construction and graphical visualization of solutions obtained by symbolic calculus (MUPAD toolbox for MATLAB). | |||||
1034526 | MATERIALS RELIABILITY | 2nd | 1st | 6 | ING-IND/21 | ITA |
Educational objectives The course aims to provide students with basic knowledge on the resistance characteristics of materials, with particular regard to mechanical, thermal and environmental. | |||||
1021719 | VEHICLE'S AERODYNAMICS | 2nd | 2nd | 6 | ING-IND/06 | ITA |
Educational objectives Providing the student with a clear comprehension of the mechanisms producing aerodynamic forces on vehicles. Providing critical understanding of the main aerodynamic devices. Developing basic design skills for aerodynamic vehicle design. |
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
1022015 | SPECIAL TECHNOLOGIES | 1st | 2nd | 9 | ING-IND/16 | ITA |
Educational objectives The course is aimed at the creation of a knowledge-base, in the | |||||
1055978 | Measurement for mechanical systems and industry | 1st | 2nd | 6 | ING-IND/12 | ENG |
Educational objectives This class will provide the students with the ground knowledge to correctly design and set up a measurement chain or system, taking in account the specific needs of the instrument user. Specific attention will be given to applications aimed at mechanical production and manufacturing industry. The class comprises a number of laboratory lessons, which explain and go into the main experimental techniques and are considered a fundamental part of the course. | |||||
10592889 | FINITE ELEMNT MECHANICAL DESIGN | 1st | 2nd | 6 | ING-IND/14 | ITA |
Educational objectives Course outline: - Elasto-plastic problems, to study forming processes, identify residual stresses, and to assess the structural integrity of parts made of ductile materials. | |||||
10606672 | AUTOMOTIVE PROPULSION SYSTEM | 1st | 2nd | 6 | ING-IND/08 | ITA |
Educational objectives Understanding the operation of internal combustion engines both in terms of thermodynamic and mechanical. | |||||
1022657 | MANAGMENT OF INDUSTRIAL PLANTS | 2nd | 1st | 9 | ING-IND/17 | ITA |
Educational objectives OBJECTIVES. The course gives the key competences of operations management, both from an organisational-management and a technical-operational point of view. The expected learning outcomes are the capabilities to analyse the relationship of market and supply chain, the role and processes of the company within the supply chain, and the applying knowledge and understanding of the methodologies for production and inventory management. | |||||
1021759 | CONTROL OF VIBRATIONS AND NOISE | 2nd | 1st | 6 | ING-IND/13 | ITA |
Educational objectives The course introduces the student to vibroacoustic problems. The aim is to acquire the knowledge of the fundamental principles and techniques for modeling the radiation of vibrating structures with particular attention to the analysis and solution of coupled structural and acoustic problems and to acquire the tools for the analysis and design of systems for vibration and noise control. | |||||
10612037 | TRIBOLOGY FOR SUSTAINABLE ENGINEERING | 2nd | 1st | 6 | ING-IND/13 | ENG |
Educational objectives Learn a critical approach to tribological problems and their impact on sustainable development. Acquire conceptual tools for optimizing friction and wear. Acquire the knowledge for a design of mechanical systems that takes into account tribological issues, with a view to energy and functional optimization. Being able to analyze, simulate (experimentally or numerically), interpret and solve problems of friction and wear in mechanical systems, taking into consideration the constraints dictated by eco-tribology (pollution of particulates and lubricants, durability and sustainability of systems, … ). Be able to participate in development projects in the main industrial sectors: tribology of sliding and non-sliding contacts, tribology in extreme conditions (contacts subject to vibrations, high pressure, low and high temperatures, …), bio-tribology. The course is based on the presentation of theories and methods of contact investigation, in parallel with the presentation of current industrial problems and proposed methods of analysis and resolution. | |||||
10592761 | VEHICLE SYSTEM DYNAMICS AND MECHATRONICS | 2nd | 2nd | 6 | ING-IND/13 | ENG |
Educational objectives General objectives Specific objectives | |||||
1047513 | COMPUTATIONAL THERMO-FLUIDS ANALYSIS IN FLUID MACHINERY | 2nd | 2nd | 6 | ING-IND/09 | ENG |
Educational objectives To assess knowledge in the modelling and simulation of thermo-fluid problems in industrial applications To develop proficiency in the use and development of computational thermo-fluid-dynamics tools. |
1st year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1044962 | CONTROL SYSTEMS | 1st | 9 | ING-INF/04 | ENG | |
Educational objectives General objectives The course provides the basic tools for analyzing and designing feedback controllers for linear dynamic systems, using both state-space and input-output descriptions. Specific objectives Knowledge and understanding: Apply knowledge and understanding: Critical and judgment skills: Communication skills: Learning ability: | |||||
10592711 | Dynamics of Micro-Mechatronic Systems | 1st | 6 | ING-IND/13 | ENG | |
Educational objectives Aim of the course is the study of electromechanical systems of dimensions close to that of the micrometer by means of physical -mathematical models with lumped and distributed parameters. Particular attention is also paid to the study of control techniques for the design of complex micro-mechatronic systems with the function of actuators and sensors. The application areas range from the control of mechanical vibrations and noise to micro robotics. | |||||
1044458 | Fluid machinery in energy conversion systems | 1st | 9 | ING-IND/08 | ENG | |
Educational objectives FMECS | |||||
1047501 | ADVANCED METHODS IN MECHANICAL DESIGN | 2nd | 6 | ING-IND/15 | ENG | |
Educational objectives The aim of the class is understanding the design workflow, its methods and tools, necessary to develop industrial products that accomplish client-company-community requirements as defined through product lifecycle. Lifecycle involves attention not only to the product performances but also to its production assessment and sustainability (integrated product-design), maintenance assessment and recycling. CAD-CAE-CAPP methodologies, integrated with CAx and Design for X methods, are studied in the context of virtual prototyping applications for lightweight design (through topological optimization and digital design),robust product-process design (through RSM techniques), ecodesign in circular economy (product configuration and innovation driven by lifecycle assessment). Exercises will be carried out through computational and CAD-CAE software. At the end of the course students will be able to set up a design workflow plan, choosing the most relevant requirements and design approaches, for any product of the industrial sector, driving innovation in accordance to the most updated design methodologies (virtual prototyping, virtual and augmented reality, reverse engineering). In addition, basics on the practical use of some CAD-CAE software will be also given. Keywords: Product Lyfecycle, integrated product-process design, ecodesign, lightweight design, virtual prototyping, CAD-CAE-CAPP methods, circular economy, digital design | |||||
1047483 | ECONOMICS OF TECHNOLOGY AND MANAGEMENT | 2nd | 9 | ING-IND/35 | ENG | |
Educational objectives Knowledge and understanding The course deals with the decision making processes of firms. In particular, students are expected to learn the basic principles of Applying knowledge and understanding Students will be able to apply basic methods and models of microeconomics, organization theory and corporate finance in order to: Making judgements Communication Lifelong learning skills Students are expected to develop those learning skills necessary to undertake additional studies on relevant topics in microeconomics and corporate finance with a high degree of autonomy. During the course, students are encouraged to investigate further any topics of major interest, by consulting supplementary academic publications, specialized books, and internet sites. These capabilities are tested and evaluated in the final written exam and possibly in the oral exam, where students may have to discuss and solve some new problems based on the topics and material covered in class. | |||||
1055977 | Measurement for mechanical systems and industry | 2nd | 9 | ING-IND/12 | ENG | |
Educational objectives This class will provide the students with the ground knowledge to correctly design and set up a measurement chain or system, taking in account the specific needs of the instrument user. Specific attention will be given to applications aimed at mechanical production and manufacturing industry. The class comprises a number of laboratory lessons, which explain and go into the main experimental techniques and are considered a fundamental part of the course. | |||||
10592758 | MECHATRONICS AND VIBRATIONS | 2nd | 9 | ING-IND/13 | ENG | |
Educational objectives In the course program, the dynamics of EMS-Electromechanical Systems and their control are analyzed in details, including systems of rigid bodies and of continuous elastic structures (rod, beam and plates). Applications to vibration analysis and their control, smart structures and mechatronic systems, are examples approached in the course. | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
New group |
2nd year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1047547 | ADDITIVE MANUFACTURING AND PRODUCTION SYSTEMS | 1st | 9 | ING-IND/16 | ENG | |
Educational objectives Student must will able to: | |||||
1055496 | Control problems in robotics | 1st | 6 | ING-INF/04 | ENG | |
Educational objectives General objectives The course is composed of two modules and presents a selection of advanced topics in Robotics and is intended as an introduction to research. Specific objectives Knowledge and understanding: Apply knowledge and understanding: Critical and judgment skills: Communication skills: Learning ability: | |||||
Elective course | 2nd | 12 | N/D | ITA | |
AAF1016 | Final exam | 2nd | 18 | N/D | ITA | |
Educational objectives The candidate produces an original research work with experimental character, backed by appropriated maps and illustrations, by which he demonstrates that he has acquired the ability to manage and to elaborate on his own the skills gained during the theoretical and methodological study, with special regard to the search of bibliographic and cartographic sources, data collection, management and processing of statistical data, critical thinking and capacity of personal elaboration. | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
New group |
Optional groups
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
AAF2435 | LAB OF DECISION SCIENCE | 1st | 1st | 3 | N/D | ENG |
Educational objectives The course aims to provide practical tools necessary to critically evaluate and deal with engineering and economic models numerically. | |||||
AAF1896 | LAB OF ENGINEERING TRIBOLOGY | 2nd | 1st | 3 | N/D | ENG |
Educational objectives Apply the acquired knowledge on tribology for the design of mechanical systems and the analysis of tribology problems. Learn to use simulation tools (experimental or numerical) in a critical way, to analyse and propose solutions to the friction and wear problems within mechanical systems. Being able to develop a project of analysis and / or solution of an industrial problem related to tribology. | |||||
AAF1955 | LAB OF AUTONOMOUS DRIVING: FORMULA STUDENT COMPETITIONS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives To provide theoretical and practical tools to design, manufacture and race a formula-style autonomous driving vehicle eligible to take part to Formula Student international series into the DV (Driverless Vehicles) class. | |||||
AAF1044 | Training | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1041 | STAGE | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1152 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1149 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1482 | Laboratory of Machines | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Measurements of Fluid Machine Performances | |||||
AAF1479 | LABORATORY OF VIBRATION MECHANICS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Goal of this lab is that offering to the sudent a practical experience on the acquisition, processing andanalysis of experimental data obtained from a vibrating structure. The experimental data are subsequentlycompared with numerical data obtained from a finite element model. | |||||
AAF1478 | Laboratory for technology Innovation | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The Laboratory aims to | |||||
AAF1743 | LAB OF STRUCTURAL ANALYSIS IN METAL MATERIALS | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The frequency in the laboratory will lead the students to achieve the following objectives : 1 ) Use of an X-ray diffractometer for the collection of spectra from samples of metal alloy . 2 ) Characterization of the metal structure of the observed samples . 3 ) Recognition of the phases present in the metal material . 4 ) Characterization of the possible states of deformation present | |||||
AAF1844 | LAB OF ADVANCED METHODS IN MECHANICAL DESIGN | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Advanced applications on solid and surface modeling, computer aided technologies, reverse engineering reconstructions, virtual prototyping and optimization | |||||
AAF1825 | LABORATORY POWER PLANTS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives This Laboratory aims to connect the theoretical arguments considered in the course of Centrali Termiche and industrial applications. This is done also by developing small design projects or by considering effective conditions. | |||||
AAF1964 | Lab of mechatronics | 1st | 2nd | 3 | N/D | ENG |
Educational objectives The course provides the necessary tools to study the dynamics of EMS-Electromechanical Systems and their control, including systems of rigid bodies. Applications to mechatronic systems are approached in the course. | |||||
AAF1951 | LAB OF SIGNAL ANALYSIS AND MECHATRONICS | 1st | 2nd | 3 | N/D | ENG |
Educational objectives Course goals Signal processing algorithms are embedded nearly in every application that involves natural signal or data analysis and/or synthesis. The aim of this course is to provide a basic, yet comprehensive, introduction to the mathematical background to support the analysis of measurements as well as diagnosis and control of machines. The course reviews some of the most important mathematical methods of digital signal processing related to mechanical engineering, such as Discrete Fourier Transform (DFT), Short Time Fourier Transform (STFT), Wavelet Transform, Hilbert Transform and the Empirical Mode Decomposition, for the calculation of signal features in time and frequency domains. Exercises from example applications and on numerical signal processing are provided: the student will be guided to analyze real life signals with the aid of Matlab software. At the end of the course, the student will be able to evaluate the effects of signal processing and analysis on measurement data from real life machines and structures. These skills are essential e.g. in machine diagnostics, control engineering, machine automation and robotics. After the course, the student: • Is familiar with some of the most important methods of signal analysis in the field of mechanical engineering. In doing that, the student will be introduced to Matlab numerical computing environment, also with the support of shared codes and worked examples. The student will be guided to: | |||||
AAF2267 | LABORATORY OF MEASUREMENTS FOR THE CONSERVATION AND RESTORATION OF CULTURAL HERITAGE | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The objective of the laboratory focuses on the application of knowledge of traditional measurement systems and some of the advanced and distributed monitoring technologies for the conservation and restoration of cultural heritage. The laboratory or ON-field experimental activities will be defined individually or in groups with the students. Eligibility will be awarded after a personal presentation of the activities carried out. | |||||
AAF1484 | Laboratory for structures calculation | 2nd | 1st | 3 | N/D | ITA |
Educational objectives To provide students with the basics of of computerized calculation of frames of beams, either naturally discrete or discretized. | |||||
AAF1535 | Laboratory for propulsion Systems and Vehicle Dynamics | 2nd | 1st | 6 | N/D | ITA |
Educational objectives
Give the student the basic knowledge on the use of | |||||
AAF1773 | RENEWABLE ENERGY SYSTEM DESIGN | 2nd | 1st | 3 | N/D | ENG |
Educational objectives RENEWABLE ENERGY SYSTEM DESIGN has the general training objective: an effective design of plants for distributed generation in urban and rural areas. | |||||
AAF1536 | Lab for Design and Building autovehicles | 2nd | 1st | 6 | N/D | ITA |
Educational objectives To provide theoretical and | |||||
AAF1491 | Laboratory for Safety in industrial Plants | 2nd | 1st | 3 | N/D | ITA |
Educational objectives
The particularly Prerequisite for | |||||
AAF1735 | LAB OF TURBULENCE AND COMBUSTION | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The Lab of Turbulence and Combustion is an integrative activity which introduces the student to the operational aspects related to the techniques of investigation and characterization of turbulent flames. The Lab offers to students the opportunity to learn the techniques used in modern research laboratories dedicated to the optimization of combustion processes, to develop advanced investigation skills and to apply the main experimental and numerical methods to the study of turbulent combustion. | |||||
AAF1486 | Laboratory for Vehicle aerodynamics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The Aerodynamics of Vehicle Laboratory is a supplementary activity (3CFU) aimed to introduce | |||||
AAF2436 | LAB OF ADVANCED FINITE ELEMENT MODELLING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to develop skills in the ability of applying advanced knowledge about finite element calculations. | |||||
AAF1534 | INTRODUCTION TO MODELLING AND SIMULATION OF TURBOLENT TRANSPORT PROCESSES | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives
To introduce | |||||
AAF1488 | Lab for Measurements for Biomechanics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to provide students with the basic knowledge needed to properly use the state of | |||||
AAF1480 | Laboratory for Noise and Vibrations Control | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives
The laboratory is | |||||
AAF1984 | LAB OF ADDITIVE MANUFACTURING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives Provide the theoretical and practical abilities to fabricate a functional component via Additive Manufacturing technologies. In particular: - cabability to manage, repair and process a 3D model; - choice of the process parameters taking into account the post-processing and the further secondary operations; - spread among several secondary operations typical of AM technologies; predict the cost and time needed for the entire process. | |||||
AAF1963 | Lab of vehicle system dynamics and mechatronics | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The course focuses on multibody modeling of vehicles and its subsystems. The student will acquire the fundamental elements to be able to develop and design a complete car or motorcycle by including the modeling of suspension elements with variable parameters and control systems for the implementation of actuators. | |||||
AAF2069 | LAB OF INDUSTRY 4.0 | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The course gives on-field experience to apply technologies of Industry 4.0. The course, as an extension of the Smart Factory course, develops one of its topics through the application of simulation models, business intelligence, machine learning, natural language processing, or defect detection and recognition. | |||||
AAF1953 | LAB OF VIRTUAL REALITY FOR HAPTIC EXPERIENCE | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Aim of the laboratory is developing virtual reality environments that through real time simulations may be interfaced with haptic sensors. | |||||
AAF1979 | LAB OF AUTONOMOUS DRIVING: CARS AND SWARMS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives The course aims to understand and develop advanced systems for assistance in driving autonomous vehicles. The student will acquire basic knowledge on devices and algorithms used by intelligent vehicles with particular attention to the ADAS systems. The student will be able to test specific sensors on electronic boards by implementing customized control logics. It will be possible to simulate the output of the camera, radar and LIDAR sensors in a 3D environment and apply machine learning and deep learning algorithms. |
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
10589635 | VARIATIONAL METHODS IN COMPUTATIONAL MECHANICS | 1st | 1st | 6 | ICAR/08 | ENG |
Educational objectives The objective of the course is to introduce the students to the variational deduction of many physical models of Engineering interest. Using variational approaches, the students will learn not only to deduce rigorous mathematical models in both solid and fluid mechanics, but also to manage the numerical tools for their solutions. | |||||
1041454 | DYNAMICS OF ELECTRICAL MACHINES AND DRIVES | 2nd | 1st | 6 | ING-IND/32 | ENG |
Educational objectives The subject aims to guide the student in understanding the principles of operation of AC machines at variable speed. The module will provide methods to analyze the behaviour of AC drives both in steady state and during transients. Finally, it will give the student knowledge on how torque is controlled in these machines. |
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
1045058 | MECHANICS OF ROBOT MANIPULATORS | 1st | 2nd | 6 | ING-IND/13 | ENG |
Educational objectives This course is addressed to kinematics and dynamics of industrial | |||||
10592761 | VEHICLE SYSTEM DYNAMICS AND MECHATRONICS | 2nd | 2nd | 6 | ING-IND/13 | ENG |
Educational objectives General objectives Specific objectives |
1st year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1044962 | CONTROL SYSTEMS | 1st | 9 | ING-INF/04 | ENG | |
Educational objectives General objectives The course provides the basic tools for analyzing and designing feedback controllers for linear dynamic systems, using both state-space and input-output descriptions. Specific objectives Knowledge and understanding: Apply knowledge and understanding: Critical and judgment skills: Communication skills: Learning ability: | |||||
1044458 | Fluid machinery in energy conversion systems | 1st | 9 | ING-IND/08 | ENG | |
Educational objectives FMECS | |||||
1021983 | MECHANICAL AND THERMAL MEASUREMENTS | 1st | 9 | ING-IND/12 | ITA | |
Educational objectives Giving the basis to design correctly a measurement chain according to the requirements both of test drivers and of users. Teaching the students the most significant experimental methods and devices for mechanical and thermal measurements. Let graduate fellows operate experimentally in mechanical industry. | |||||
1047483 | ECONOMICS OF TECHNOLOGY AND MANAGEMENT | 2nd | 9 | ING-IND/35 | ENG | |
Educational objectives Knowledge and understanding The course deals with the decision making processes of firms. In particular, students are expected to learn the basic principles of Applying knowledge and understanding Students will be able to apply basic methods and models of microeconomics, organization theory and corporate finance in order to: Making judgements Communication Lifelong learning skills Students are expected to develop those learning skills necessary to undertake additional studies on relevant topics in microeconomics and corporate finance with a high degree of autonomy. During the course, students are encouraged to investigate further any topics of major interest, by consulting supplementary academic publications, specialized books, and internet sites. These capabilities are tested and evaluated in the final written exam and possibly in the oral exam, where students may have to discuss and solve some new problems based on the topics and material covered in class. | |||||
1055978 | Measurement for mechanical systems and industry | 2nd | 6 | ING-IND/12 | ENG | |
Educational objectives This class will provide the students with the ground knowledge to correctly design and set up a measurement chain or system, taking in account the specific needs of the instrument user. Specific attention will be given to applications aimed at mechanical production and manufacturing industry. The class comprises a number of laboratory lessons, which explain and go into the main experimental techniques and are considered a fundamental part of the course. | |||||
1036555 | SPECIAL TECHNOLOGIES | 2nd | 6 | ING-IND/16 | ITA | |
Educational objectives The course is aimed at the creation of a knowledge-base in the student on the main processing technologies, typical of metallic materials, in use or expected to be adopted in the manufacturing industry. This course aims also to provide some case studies of typical industrial applications which analyze specific technological aspects and limitations in order to give a technical-practical qualification to the student and solid knowledge of tools that will enable him to understand technological problems, to work by making innovations and structuring its actions in a logical way, developing capacity also strongly requested by companies.Autonomy of judgment: Evaluate and compare the performance expected by the employment of different manufacturing technologies to scenarios which are different from the usual one, elaborating solutions on the basis of known information. Communicative skills: to be able to communicate clearly their own conclusions on issues concerning topics which are objet of the course and on topics concerning the performance of manufacturing processes. | |||||
Elective course | 2nd | 6 | N/D | ITA | |
THREE-DIMENSIONAL MODELING |
2nd year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1034526 | MATERIALS RELIABILITY | 1st | 6 | ING-IND/21 | ITA | |
Educational objectives The course aims to provide students with basic knowledge on the resistance characteristics of materials, with particular regard to mechanical, thermal and environmental. | |||||
10592711 | Dynamics of Micro-Mechatronic Systems | 1st | 6 | ING-IND/13 | ENG | |
Educational objectives Aim of the course is the study of electromechanical systems of dimensions close to that of the micrometer by means of physical -mathematical models with lumped and distributed parameters. Particular attention is also paid to the study of control techniques for the design of complex micro-mechatronic systems with the function of actuators and sensors. The application areas range from the control of mechanical vibrations and noise to micro robotics. | |||||
1021834 | Mathematical models for engineering | 1st | 6 | MAT/05 | ITA | |
Educational objectives We expect the student to learn the use of sequences and series of functions (in particular Fourier and power series) and to reconstruct signals via Laplace tranform. | |||||
10592758 | MECHATRONICS AND VIBRATIONS | 2nd | 9 | ING-IND/13 | ENG | |
Educational objectives In the course program, the dynamics of EMS-Electromechanical Systems and their control are analyzed in details, including systems of rigid bodies and of continuous elastic structures (rod, beam and plates). Applications to vibration analysis and their control, smart structures and mechatronic systems, are examples approached in the course. | |||||
1045060 | SAFETY AND MAINTENANCE FOR INDUSTRIAL SYSTEMS | 2nd | 9 | ING-IND/17 | ENG | |
Educational objectives To realize the knowledge for design and management of safety and maintenance in industrial complex systems. | |||||
Elective course | 2nd | 6 | N/D | ITA | |
AAF1016 | Final exam | 2nd | 18 | N/D | ITA | |
Educational objectives The candidate produces an original research work with experimental character, backed by appropriated maps and illustrations, by which he demonstrates that he has acquired the ability to manage and to elaborate on his own the skills gained during the theoretical and methodological study, with special regard to the search of bibliographic and cartographic sources, data collection, management and processing of statistical data, critical thinking and capacity of personal elaboration. | |||||
THREE-DIMENSIONAL MODELING |
Optional groups
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
AAF2435 | LAB OF DECISION SCIENCE | 1st | 1st | 3 | N/D | ENG |
Educational objectives The course aims to provide practical tools necessary to critically evaluate and deal with engineering and economic models numerically. | |||||
AAF1896 | LAB OF ENGINEERING TRIBOLOGY | 2nd | 1st | 3 | N/D | ENG |
Educational objectives Apply the acquired knowledge on tribology for the design of mechanical systems and the analysis of tribology problems. Learn to use simulation tools (experimental or numerical) in a critical way, to analyse and propose solutions to the friction and wear problems within mechanical systems. Being able to develop a project of analysis and / or solution of an industrial problem related to tribology. | |||||
AAF1955 | LAB OF AUTONOMOUS DRIVING: FORMULA STUDENT COMPETITIONS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives To provide theoretical and practical tools to design, manufacture and race a formula-style autonomous driving vehicle eligible to take part to Formula Student international series into the DV (Driverless Vehicles) class. | |||||
AAF1044 | Training | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1041 | STAGE | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1152 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1149 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1482 | Laboratory of Machines | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Measurements of Fluid Machine Performances | |||||
AAF1479 | LABORATORY OF VIBRATION MECHANICS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Goal of this lab is that offering to the sudent a practical experience on the acquisition, processing andanalysis of experimental data obtained from a vibrating structure. The experimental data are subsequentlycompared with numerical data obtained from a finite element model. | |||||
AAF1478 | Laboratory for technology Innovation | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The Laboratory aims to | |||||
AAF1743 | LAB OF STRUCTURAL ANALYSIS IN METAL MATERIALS | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The frequency in the laboratory will lead the students to achieve the following objectives : 1 ) Use of an X-ray diffractometer for the collection of spectra from samples of metal alloy . 2 ) Characterization of the metal structure of the observed samples . 3 ) Recognition of the phases present in the metal material . 4 ) Characterization of the possible states of deformation present | |||||
AAF1844 | LAB OF ADVANCED METHODS IN MECHANICAL DESIGN | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Advanced applications on solid and surface modeling, computer aided technologies, reverse engineering reconstructions, virtual prototyping and optimization | |||||
AAF1825 | LABORATORY POWER PLANTS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives This Laboratory aims to connect the theoretical arguments considered in the course of Centrali Termiche and industrial applications. This is done also by developing small design projects or by considering effective conditions. | |||||
AAF1964 | Lab of mechatronics | 1st | 2nd | 3 | N/D | ENG |
Educational objectives The course provides the necessary tools to study the dynamics of EMS-Electromechanical Systems and their control, including systems of rigid bodies. Applications to mechatronic systems are approached in the course. | |||||
AAF1951 | LAB OF SIGNAL ANALYSIS AND MECHATRONICS | 1st | 2nd | 3 | N/D | ENG |
Educational objectives Course goals Signal processing algorithms are embedded nearly in every application that involves natural signal or data analysis and/or synthesis. The aim of this course is to provide a basic, yet comprehensive, introduction to the mathematical background to support the analysis of measurements as well as diagnosis and control of machines. The course reviews some of the most important mathematical methods of digital signal processing related to mechanical engineering, such as Discrete Fourier Transform (DFT), Short Time Fourier Transform (STFT), Wavelet Transform, Hilbert Transform and the Empirical Mode Decomposition, for the calculation of signal features in time and frequency domains. Exercises from example applications and on numerical signal processing are provided: the student will be guided to analyze real life signals with the aid of Matlab software. At the end of the course, the student will be able to evaluate the effects of signal processing and analysis on measurement data from real life machines and structures. These skills are essential e.g. in machine diagnostics, control engineering, machine automation and robotics. After the course, the student: • Is familiar with some of the most important methods of signal analysis in the field of mechanical engineering. In doing that, the student will be introduced to Matlab numerical computing environment, also with the support of shared codes and worked examples. The student will be guided to: | |||||
AAF2267 | LABORATORY OF MEASUREMENTS FOR THE CONSERVATION AND RESTORATION OF CULTURAL HERITAGE | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The objective of the laboratory focuses on the application of knowledge of traditional measurement systems and some of the advanced and distributed monitoring technologies for the conservation and restoration of cultural heritage. The laboratory or ON-field experimental activities will be defined individually or in groups with the students. Eligibility will be awarded after a personal presentation of the activities carried out. | |||||
AAF1484 | Laboratory for structures calculation | 2nd | 1st | 3 | N/D | ITA |
Educational objectives To provide students with the basics of of computerized calculation of frames of beams, either naturally discrete or discretized. | |||||
AAF1535 | Laboratory for propulsion Systems and Vehicle Dynamics | 2nd | 1st | 6 | N/D | ITA |
Educational objectives
Give the student the basic knowledge on the use of | |||||
AAF1773 | RENEWABLE ENERGY SYSTEM DESIGN | 2nd | 1st | 3 | N/D | ENG |
Educational objectives RENEWABLE ENERGY SYSTEM DESIGN has the general training objective: an effective design of plants for distributed generation in urban and rural areas. | |||||
AAF1536 | Lab for Design and Building autovehicles | 2nd | 1st | 6 | N/D | ITA |
Educational objectives To provide theoretical and | |||||
AAF1491 | Laboratory for Safety in industrial Plants | 2nd | 1st | 3 | N/D | ITA |
Educational objectives
The particularly Prerequisite for | |||||
AAF1735 | LAB OF TURBULENCE AND COMBUSTION | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The Lab of Turbulence and Combustion is an integrative activity which introduces the student to the operational aspects related to the techniques of investigation and characterization of turbulent flames. The Lab offers to students the opportunity to learn the techniques used in modern research laboratories dedicated to the optimization of combustion processes, to develop advanced investigation skills and to apply the main experimental and numerical methods to the study of turbulent combustion. | |||||
AAF1486 | Laboratory for Vehicle aerodynamics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The Aerodynamics of Vehicle Laboratory is a supplementary activity (3CFU) aimed to introduce | |||||
AAF2436 | LAB OF ADVANCED FINITE ELEMENT MODELLING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to develop skills in the ability of applying advanced knowledge about finite element calculations. | |||||
AAF1534 | INTRODUCTION TO MODELLING AND SIMULATION OF TURBOLENT TRANSPORT PROCESSES | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives
To introduce | |||||
AAF1488 | Lab for Measurements for Biomechanics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to provide students with the basic knowledge needed to properly use the state of | |||||
AAF1480 | Laboratory for Noise and Vibrations Control | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives
The laboratory is | |||||
AAF1984 | LAB OF ADDITIVE MANUFACTURING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives Provide the theoretical and practical abilities to fabricate a functional component via Additive Manufacturing technologies. In particular: - cabability to manage, repair and process a 3D model; - choice of the process parameters taking into account the post-processing and the further secondary operations; - spread among several secondary operations typical of AM technologies; predict the cost and time needed for the entire process. | |||||
AAF1963 | Lab of vehicle system dynamics and mechatronics | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The course focuses on multibody modeling of vehicles and its subsystems. The student will acquire the fundamental elements to be able to develop and design a complete car or motorcycle by including the modeling of suspension elements with variable parameters and control systems for the implementation of actuators. | |||||
AAF2069 | LAB OF INDUSTRY 4.0 | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The course gives on-field experience to apply technologies of Industry 4.0. The course, as an extension of the Smart Factory course, develops one of its topics through the application of simulation models, business intelligence, machine learning, natural language processing, or defect detection and recognition. | |||||
AAF1953 | LAB OF VIRTUAL REALITY FOR HAPTIC EXPERIENCE | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Aim of the laboratory is developing virtual reality environments that through real time simulations may be interfaced with haptic sensors. | |||||
AAF1979 | LAB OF AUTONOMOUS DRIVING: CARS AND SWARMS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives The course aims to understand and develop advanced systems for assistance in driving autonomous vehicles. The student will acquire basic knowledge on devices and algorithms used by intelligent vehicles with particular attention to the ADAS systems. The student will be able to test specific sensors on electronic boards by implementing customized control logics. It will be possible to simulate the output of the camera, radar and LIDAR sensors in a 3D environment and apply machine learning and deep learning algorithms. |
1st year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1044962 | CONTROL SYSTEMS | 1st | 9 | ING-INF/04 | ENG | |
Educational objectives General objectives The course provides the basic tools for analyzing and designing feedback controllers for linear dynamic systems, using both state-space and input-output descriptions. Specific objectives Knowledge and understanding: Apply knowledge and understanding: Critical and judgment skills: Communication skills: Learning ability: | |||||
1044458 | Fluid machinery in energy conversion systems | 1st | 9 | ING-IND/08 | ENG | |
Educational objectives FMECS | |||||
1047546 | OPERATIONS MANAGEMENT | 1st | 6 | ING-IND/17 | ENG | |
Educational objectives OBJECTIVES. The course gives the key competences of operations management, both from an organisational-management and a technical-operational point of view. The expected learning outcomes are the capabilities to analyse the relationship of market and supply chain, the role and processes of the company within the supply chain, and the applying knowledge and understanding of the methodologies for production and inventory management. EXPECTED LEARNING OUTCOMES. Knowledge and understanding: knowledge and understanding of the most important processes and techniques for operations management, and supply chain management. Models and methods for materials management, for the production configuration, the calculation of economic production quantity, and the planning and programming techniques. Capability: capability to analyse with a systemic approach, model problems and identify the best techniques for solving the main challenges of supply chain management, production, and logistics, with a focus on production planning/programming and materials management. | |||||
Elective course | 1st | 6 | N/D | ITA | |
1047501 | ADVANCED METHODS IN MECHANICAL DESIGN | 2nd | 6 | ING-IND/15 | ENG | |
Educational objectives The aim of the class is understanding the design workflow, its methods and tools, necessary to develop industrial products that accomplish client-company-community requirements as defined through product lifecycle. Lifecycle involves attention not only to the product performances but also to its production assessment and sustainability (integrated product-design), maintenance assessment and recycling. CAD-CAE-CAPP methodologies, integrated with CAx and Design for X methods, are studied in the context of virtual prototyping applications for lightweight design (through topological optimization and digital design),robust product-process design (through RSM techniques), ecodesign in circular economy (product configuration and innovation driven by lifecycle assessment). Exercises will be carried out through computational and CAD-CAE software. At the end of the course students will be able to set up a design workflow plan, choosing the most relevant requirements and design approaches, for any product of the industrial sector, driving innovation in accordance to the most updated design methodologies (virtual prototyping, virtual and augmented reality, reverse engineering). In addition, basics on the practical use of some CAD-CAE software will be also given. Keywords: Product Lyfecycle, integrated product-process design, ecodesign, lightweight design, virtual prototyping, CAD-CAE-CAPP methods, circular economy, digital design | |||||
1055977 | Measurement for mechanical systems and industry | 2nd | 9 | ING-IND/12 | ENG | |
Educational objectives This class will provide the students with the ground knowledge to correctly design and set up a measurement chain or system, taking in account the specific needs of the instrument user. Specific attention will be given to applications aimed at mechanical production and manufacturing industry. The class comprises a number of laboratory lessons, which explain and go into the main experimental techniques and are considered a fundamental part of the course. | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
Labs, internships and other activities (ENG) - 6 credits of your choice |
2nd year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1047547 | ADDITIVE MANUFACTURING AND PRODUCTION SYSTEMS | 1st | 9 | ING-IND/16 | ENG | |
Educational objectives Student must will able to: | |||||
1056021 | APPLIED METALLURGY | 1st | 6 | ING-IND/21 | ENG | |
Educational objectives The educational objectives are: 1. Good knowledge of the main non destructive tests such as liquid penetrant testing, magnetic particle testing, ultrasonic testing, radiography 2. Ability to combine theory and practice in the application of these methods to the detection of casting and welding defects | |||||
Elective course | 2nd | 6 | N/D | ITA | |
AAF1016 | Final exam | 2nd | 18 | N/D | ITA | |
Educational objectives The candidate produces an original research work with experimental character, backed by appropriated maps and illustrations, by which he demonstrates that he has acquired the ability to manage and to elaborate on his own the skills gained during the theoretical and methodological study, with special regard to the search of bibliographic and cartographic sources, data collection, management and processing of statistical data, critical thinking and capacity of personal elaboration. | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
Labs, internships and other activities (ENG) - 6 credits of your choice |
Optional groups
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
10592711 | Dynamics of Micro-Mechatronic Systems | 1st | 1st | 6 | ING-IND/13 | ENG |
Educational objectives Aim of the course is the study of electromechanical systems of dimensions close to that of the micrometer by means of physical -mathematical models with lumped and distributed parameters. Particular attention is also paid to the study of control techniques for the design of complex micro-mechatronic systems with the function of actuators and sensors. The application areas range from the control of mechanical vibrations and noise to micro robotics. | |||||
1045058 | MECHANICS OF ROBOT MANIPULATORS | 1st | 2nd | 6 | ING-IND/13 | ENG |
Educational objectives This course is addressed to kinematics and dynamics of industrial | |||||
10592758 | MECHATRONICS AND VIBRATIONS | 1st | 2nd | 9 | ING-IND/13 | ENG |
Educational objectives In the course program, the dynamics of EMS-Electromechanical Systems and their control are analyzed in details, including systems of rigid bodies and of continuous elastic structures (rod, beam and plates). Applications to vibration analysis and their control, smart structures and mechatronic systems, are examples approached in the course. | |||||
1045060 | SAFETY AND MAINTENANCE FOR INDUSTRIAL SYSTEMS | 1st | 2nd | 9 | ING-IND/17 | ENG |
Educational objectives To realize the knowledge for design and management of safety and maintenance in industrial complex systems. | |||||
1051502 | ADVANCED ENERGY CONVERSION SYSTEM | 2nd | 1st | 9 | ING-IND/09 | ENG |
Educational objectives Objectives | |||||
10592761 | VEHICLE SYSTEM DYNAMICS AND MECHATRONICS | 2nd | 2nd | 6 | ING-IND/13 | ENG |
Educational objectives General objectives Specific objectives | |||||
1047513 | COMPUTATIONAL THERMO-FLUIDS ANALYSIS IN FLUID MACHINERY | 2nd | 2nd | 6 | ING-IND/09 | ENG |
Educational objectives To assess knowledge in the modelling and simulation of thermo-fluid problems in industrial applications To develop proficiency in the use and development of computational thermo-fluid-dynamics tools. |
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
10616523 | OPTIMIZATION AND DECISION SCIENCE | 1st | 1st | 6 | MAT/09 | ENG |
Educational objectives Providing knowledge about optimization and decision science problems, providing expertise on the characteristics of the problems and mathematical optimization methods adopted in the engineering field, and proposing first examples of implementation and use. | |||||
1047483 | ECONOMICS OF TECHNOLOGY AND MANAGEMENT | 1st | 2nd | 9 | ING-IND/35 | ENG |
Educational objectives Knowledge and understanding The course deals with the decision making processes of firms. In particular, students are expected to learn the basic principles of Applying knowledge and understanding Students will be able to apply basic methods and models of microeconomics, organization theory and corporate finance in order to: Making judgements Communication Lifelong learning skills Students are expected to develop those learning skills necessary to undertake additional studies on relevant topics in microeconomics and corporate finance with a high degree of autonomy. During the course, students are encouraged to investigate further any topics of major interest, by consulting supplementary academic publications, specialized books, and internet sites. These capabilities are tested and evaluated in the final written exam and possibly in the oral exam, where students may have to discuss and solve some new problems based on the topics and material covered in class. | |||||
1041454 | DYNAMICS OF ELECTRICAL MACHINES AND DRIVES | 2nd | 1st | 6 | ING-IND/32 | ENG |
Educational objectives The subject aims to guide the student in understanding the principles of operation of AC machines at variable speed. The module will provide methods to analyze the behaviour of AC drives both in steady state and during transients. Finally, it will give the student knowledge on how torque is controlled in these machines. | |||||
1047556 | TURBULENCE AND COMBUSTION | 2nd | 1st | 9 | ING-IND/06 | ENG |
Educational objectives Leading the student to the clear comprehension of the basic mechanisms of turbulence in free and wall bounded flows. Leading the student to the clear comprehension of the basic mechanisms of turbulent combustion. Providing critical knowledge of the different regimes of turbulent combustion and of the effect of turbulence in reactive flows. Developing basic skill for combustor design. |
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
AAF2435 | LAB OF DECISION SCIENCE | 1st | 1st | 3 | N/D | ENG |
Educational objectives The course aims to provide practical tools necessary to critically evaluate and deal with engineering and economic models numerically. | |||||
AAF1896 | LAB OF ENGINEERING TRIBOLOGY | 2nd | 1st | 3 | N/D | ENG |
Educational objectives Apply the acquired knowledge on tribology for the design of mechanical systems and the analysis of tribology problems. Learn to use simulation tools (experimental or numerical) in a critical way, to analyse and propose solutions to the friction and wear problems within mechanical systems. Being able to develop a project of analysis and / or solution of an industrial problem related to tribology. | |||||
AAF1955 | LAB OF AUTONOMOUS DRIVING: FORMULA STUDENT COMPETITIONS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives To provide theoretical and practical tools to design, manufacture and race a formula-style autonomous driving vehicle eligible to take part to Formula Student international series into the DV (Driverless Vehicles) class. | |||||
AAF2434 | LAB OF ACOUSTICS AND LIQUID-GAS MEDIA | 1st | 1st | 3 | N/D | ENG |
Educational objectives The lab aims to familiarize with the complex phenomenon of ultrasound propagation in bubbly liquids, offering applications able to make understandable the role of this phenomenon in multiple technical applications (such as microfluidics, ultrasound medical imaging or soundproofing materials). Doing this it will provide knowledge and skills of critical evaluation of complex systems. | |||||
AAF1821 | INTERNSHIP | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1894 | internship | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1965 | OTHER TRAINING ACTIVITIES | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1809 | Other training activities | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1844 | LAB OF ADVANCED METHODS IN MECHANICAL DESIGN | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Advanced applications on solid and surface modeling, computer aided technologies, reverse engineering reconstructions, virtual prototyping and optimization | |||||
AAF1964 | Lab of mechatronics | 1st | 2nd | 3 | N/D | ENG |
Educational objectives The course provides the necessary tools to study the dynamics of EMS-Electromechanical Systems and their control, including systems of rigid bodies. Applications to mechatronic systems are approached in the course. | |||||
AAF1951 | LAB OF SIGNAL ANALYSIS AND MECHATRONICS | 1st | 2nd | 3 | N/D | ENG |
Educational objectives Course goals Signal processing algorithms are embedded nearly in every application that involves natural signal or data analysis and/or synthesis. The aim of this course is to provide a basic, yet comprehensive, introduction to the mathematical background to support the analysis of measurements as well as diagnosis and control of machines. The course reviews some of the most important mathematical methods of digital signal processing related to mechanical engineering, such as Discrete Fourier Transform (DFT), Short Time Fourier Transform (STFT), Wavelet Transform, Hilbert Transform and the Empirical Mode Decomposition, for the calculation of signal features in time and frequency domains. Exercises from example applications and on numerical signal processing are provided: the student will be guided to analyze real life signals with the aid of Matlab software. At the end of the course, the student will be able to evaluate the effects of signal processing and analysis on measurement data from real life machines and structures. These skills are essential e.g. in machine diagnostics, control engineering, machine automation and robotics. After the course, the student: • Is familiar with some of the most important methods of signal analysis in the field of mechanical engineering. In doing that, the student will be introduced to Matlab numerical computing environment, also with the support of shared codes and worked examples. The student will be guided to: | |||||
AAF1773 | RENEWABLE ENERGY SYSTEM DESIGN | 2nd | 1st | 3 | N/D | ENG |
Educational objectives RENEWABLE ENERGY SYSTEM DESIGN has the general training objective: an effective design of plants for distributed generation in urban and rural areas. | |||||
AAF1735 | LAB OF TURBULENCE AND COMBUSTION | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The Lab of Turbulence and Combustion is an integrative activity which introduces the student to the operational aspects related to the techniques of investigation and characterization of turbulent flames. The Lab offers to students the opportunity to learn the techniques used in modern research laboratories dedicated to the optimization of combustion processes, to develop advanced investigation skills and to apply the main experimental and numerical methods to the study of turbulent combustion. | |||||
AAF1534 | INTRODUCTION TO MODELLING AND SIMULATION OF TURBOLENT TRANSPORT PROCESSES | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives
To introduce | |||||
AAF1963 | Lab of vehicle system dynamics and mechatronics | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The course focuses on multibody modeling of vehicles and its subsystems. The student will acquire the fundamental elements to be able to develop and design a complete car or motorcycle by including the modeling of suspension elements with variable parameters and control systems for the implementation of actuators. | |||||
AAF1953 | LAB OF VIRTUAL REALITY FOR HAPTIC EXPERIENCE | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Aim of the laboratory is developing virtual reality environments that through real time simulations may be interfaced with haptic sensors. | |||||
AAF1979 | LAB OF AUTONOMOUS DRIVING: CARS AND SWARMS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives The course aims to understand and develop advanced systems for assistance in driving autonomous vehicles. The student will acquire basic knowledge on devices and algorithms used by intelligent vehicles with particular attention to the ADAS systems. The student will be able to test specific sensors on electronic boards by implementing customized control logics. It will be possible to simulate the output of the camera, radar and LIDAR sensors in a 3D environment and apply machine learning and deep learning algorithms. |
1st year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1044962 | CONTROL SYSTEMS | 1st | 9 | ING-INF/04 | ENG | |
Educational objectives General objectives The course provides the basic tools for analyzing and designing feedback controllers for linear dynamic systems, using both state-space and input-output descriptions. Specific objectives Knowledge and understanding: Apply knowledge and understanding: Critical and judgment skills: Communication skills: Learning ability: | |||||
1044458 | Fluid machinery in energy conversion systems | 1st | 9 | ING-IND/08 | ENG | |
Educational objectives FMECS | |||||
1047556 | TURBULENCE AND COMBUSTION | 1st | 9 | ING-IND/06 | ENG | |
Educational objectives Leading the student to the clear comprehension of the basic mechanisms of turbulence in free and wall bounded flows. Leading the student to the clear comprehension of the basic mechanisms of turbulent combustion. Providing critical knowledge of the different regimes of turbulent combustion and of the effect of turbulence in reactive flows. Developing basic skill for combustor design. | |||||
10589635 | VARIATIONAL METHODS IN COMPUTATIONAL MECHANICS | 1st | 6 | ICAR/08 | ENG | |
Educational objectives The objective of the course is to introduce the students to the variational deduction of many physical models of Engineering interest. Using variational approaches, the students will learn not only to deduce rigorous mathematical models in both solid and fluid mechanics, but also to manage the numerical tools for their solutions. | |||||
10589629 | FLUID STRUCTURE INTERACTION | 2nd | 9 | ING-IND/09 | ENG | |
Educational objectives The lectures will focus on the fundamental concepts and advanced topics in fluid–structure interaction (FSI) modelling and computation. | |||||
10592758 | MECHATRONICS AND VIBRATIONS | 2nd | 9 | ING-IND/13 | ENG | |
Educational objectives In the course program, the dynamics of EMS-Electromechanical Systems and their control are analyzed in details, including systems of rigid bodies and of continuous elastic structures (rod, beam and plates). Applications to vibration analysis and their control, smart structures and mechatronic systems, are examples approached in the course. | |||||
1055978 | Measurement for mechanical systems and industry | 2nd | 6 | ING-IND/12 | ENG | |
Educational objectives This class will provide the students with the ground knowledge to correctly design and set up a measurement chain or system, taking in account the specific needs of the instrument user. Specific attention will be given to applications aimed at mechanical production and manufacturing industry. The class comprises a number of laboratory lessons, which explain and go into the main experimental techniques and are considered a fundamental part of the course. | |||||
1047501 | ADVANCED METHODS IN MECHANICAL DESIGN | 2nd | 6 | ING-IND/15 | ENG | |
Educational objectives The aim of the class is understanding the design workflow, its methods and tools, necessary to develop industrial products that accomplish client-company-community requirements as defined through product lifecycle. Lifecycle involves attention not only to the product performances but also to its production assessment and sustainability (integrated product-design), maintenance assessment and recycling. CAD-CAE-CAPP methodologies, integrated with CAx and Design for X methods, are studied in the context of virtual prototyping applications for lightweight design (through topological optimization and digital design),robust product-process design (through RSM techniques), ecodesign in circular economy (product configuration and innovation driven by lifecycle assessment). Exercises will be carried out through computational and CAD-CAE software. At the end of the course students will be able to set up a design workflow plan, choosing the most relevant requirements and design approaches, for any product of the industrial sector, driving innovation in accordance to the most updated design methodologies (virtual prototyping, virtual and augmented reality, reverse engineering). In addition, basics on the practical use of some CAD-CAE software will be also given. Keywords: Product Lyfecycle, integrated product-process design, ecodesign, lightweight design, virtual prototyping, CAD-CAE-CAPP methods, circular economy, digital design |
2nd year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1021948 | MACHINE INFRASTRUCTURE | 1st | 9 | ING-IND/14 | ITA | |
Educational objectives The class provides further insights on the mechanical behavior of industrial engineering materials and on the structural design and verification of several components and mechanical system broadly used in Machine Design. It is the natural continuation of the Design of Machine Elements course held during the last year of the Bachelor in Mechanical Engineering. | |||||
10612037 | TRIBOLOGY FOR SUSTAINABLE ENGINEERING | 1st | 6 | ING-IND/13 | ENG | |
Educational objectives Learn a critical approach to tribological problems and their impact on sustainable development. Acquire conceptual tools for optimizing friction and wear. Acquire the knowledge for a design of mechanical systems that takes into account tribological issues, with a view to energy and functional optimization. Being able to analyze, simulate (experimentally or numerically), interpret and solve problems of friction and wear in mechanical systems, taking into consideration the constraints dictated by eco-tribology (pollution of particulates and lubricants, durability and sustainability of systems, … ). Be able to participate in development projects in the main industrial sectors: tribology of sliding and non-sliding contacts, tribology in extreme conditions (contacts subject to vibrations, high pressure, low and high temperatures, …), bio-tribology. The course is based on the presentation of theories and methods of contact investigation, in parallel with the presentation of current industrial problems and proposed methods of analysis and resolution. | |||||
AAF1149 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 1st | 3 | N/D | ITA | |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
Elective course | 1st | 6 | N/D | ITA | |
1025927 | Mechanics of structures | 2nd | 6 | ICAR/08 | ITA | |
Educational objectives The aim of the course is to present some models for structural elements of common use in engineering, and to give the students (semi-)analytical solutions for successive comparisons with the results of numerical commercial codes. | |||||
Elective course | 2nd | 6 | N/D | ITA | |
AAF1016 | Final exam | 2nd | 18 | N/D | ITA | |
Educational objectives The candidate produces an original research work with experimental character, backed by appropriated maps and illustrations, by which he demonstrates that he has acquired the ability to manage and to elaborate on his own the skills gained during the theoretical and methodological study, with special regard to the search of bibliographic and cartographic sources, data collection, management and processing of statistical data, critical thinking and capacity of personal elaboration. | |||||
THREE-DIMENSIONAL MODELING |
Optional groups
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
AAF1041 | Training | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1149 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. |
1st year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1044962 | CONTROL SYSTEMS | 1st | 9 | ING-INF/04 | ENG | |
Educational objectives General objectives The course provides the basic tools for analyzing and designing feedback controllers for linear dynamic systems, using both state-space and input-output descriptions. Specific objectives Knowledge and understanding: Apply knowledge and understanding: Critical and judgment skills: Communication skills: Learning ability: | |||||
1044458 | Fluid machinery in energy conversion systems | 1st | 9 | ING-IND/08 | ENG | |
Educational objectives FMECS | |||||
1021983 | MECHANICAL AND THERMAL MEASUREMENTS | 1st | 9 | ING-IND/12 | ITA | |
Educational objectives Giving the basis to design correctly a measurement chain according to the requirements both of test drivers and of users. Teaching the students the most significant experimental methods and devices for mechanical and thermal measurements. Let graduate fellows operate experimentally in mechanical industry. | |||||
1055047 | Economics of technology and management | 2nd | 6 | ING-IND/35 | ENG | |
Educational objectives Knowledge and understanding The course deals with the decision making processes of firms. In particular, students are expected to learn the basic principles of Applying knowledge and understanding Students will be able to apply basic methods and models of microeconomics, organization theory and corporate finance in order to: Making judgements Communication Lifelong learning skills Students are expected to develop those learning skills necessary to undertake additional studies on relevant topics in microeconomics and corporate finance with a high degree of autonomy. During the course, students are encouraged to investigate further any topics of major interest, by consulting supplementary academic publications, specialized books, and internet sites. These capabilities are tested and evaluated in the final written exam and possibly in the oral exam, where students may have to discuss and solve some new problems based on the topics and material covered in class. | |||||
10592758 | MECHATRONICS AND VIBRATIONS | 2nd | 9 | ING-IND/13 | ENG | |
Educational objectives In the course program, the dynamics of EMS-Electromechanical Systems and their control are analyzed in details, including systems of rigid bodies and of continuous elastic structures (rod, beam and plates). Applications to vibration analysis and their control, smart structures and mechatronic systems, are examples approached in the course. | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING |
2nd year
Lesson | Semester | CFU | SSD | Language | |
---|---|---|---|---|---|
1021948 | MACHINE INFRASTRUCTURE | 1st | 9 | ING-IND/14 | ITA | |
Educational objectives The class provides further insights on the mechanical behavior of industrial engineering materials and on the structural design and verification of several components and mechanical system broadly used in Machine Design. It is the natural continuation of the Design of Machine Elements course held during the last year of the Bachelor in Mechanical Engineering. | |||||
Elective course | 2nd | 12 | N/D | ITA | |
AAF1016 | Final exam | 2nd | 18 | N/D | ITA | |
Educational objectives The candidate produces an original research work with experimental character, backed by appropriated maps and illustrations, by which he demonstrates that he has acquired the ability to manage and to elaborate on his own the skills gained during the theoretical and methodological study, with special regard to the search of bibliographic and cartographic sources, data collection, management and processing of statistical data, critical thinking and capacity of personal elaboration. | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING | |||||
THREE-DIMENSIONAL MODELING |
Optional groups
Lesson | Year | Semester | CFU | SSD | Language |
---|---|---|---|---|---|
AAF2435 | LAB OF DECISION SCIENCE | 1st | 1st | 3 | N/D | ENG |
Educational objectives The course aims to provide practical tools necessary to critically evaluate and deal with engineering and economic models numerically. | |||||
AAF1896 | LAB OF ENGINEERING TRIBOLOGY | 2nd | 1st | 3 | N/D | ENG |
Educational objectives Apply the acquired knowledge on tribology for the design of mechanical systems and the analysis of tribology problems. Learn to use simulation tools (experimental or numerical) in a critical way, to analyse and propose solutions to the friction and wear problems within mechanical systems. Being able to develop a project of analysis and / or solution of an industrial problem related to tribology. | |||||
AAF1955 | LAB OF AUTONOMOUS DRIVING: FORMULA STUDENT COMPETITIONS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives To provide theoretical and practical tools to design, manufacture and race a formula-style autonomous driving vehicle eligible to take part to Formula Student international series into the DV (Driverless Vehicles) class. | |||||
AAF1044 | Training | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1041 | STAGE | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1152 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 6 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1149 | OTHER USEFUL SKILLS FOR INCLUSION IN THE WORLD OF WORK | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The apprenticeship allows to acquire credits through laboratory activities or through the attendance at scientific seminars certified and approved by the council. | |||||
AAF1482 | Laboratory of Machines | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Measurements of Fluid Machine Performances | |||||
AAF1479 | LABORATORY OF VIBRATION MECHANICS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives Goal of this lab is that offering to the sudent a practical experience on the acquisition, processing andanalysis of experimental data obtained from a vibrating structure. The experimental data are subsequentlycompared with numerical data obtained from a finite element model. | |||||
AAF1478 | Laboratory for technology Innovation | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The Laboratory aims to | |||||
AAF1743 | LAB OF STRUCTURAL ANALYSIS IN METAL MATERIALS | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The frequency in the laboratory will lead the students to achieve the following objectives : 1 ) Use of an X-ray diffractometer for the collection of spectra from samples of metal alloy . 2 ) Characterization of the metal structure of the observed samples . 3 ) Recognition of the phases present in the metal material . 4 ) Characterization of the possible states of deformation present | |||||
AAF1844 | LAB OF ADVANCED METHODS IN MECHANICAL DESIGN | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Advanced applications on solid and surface modeling, computer aided technologies, reverse engineering reconstructions, virtual prototyping and optimization | |||||
AAF1825 | LABORATORY POWER PLANTS | 1st | 2nd | 3 | N/D | ITA |
Educational objectives This Laboratory aims to connect the theoretical arguments considered in the course of Centrali Termiche and industrial applications. This is done also by developing small design projects or by considering effective conditions. | |||||
AAF1964 | Lab of mechatronics | 1st | 2nd | 3 | N/D | ENG |
Educational objectives The course provides the necessary tools to study the dynamics of EMS-Electromechanical Systems and their control, including systems of rigid bodies. Applications to mechatronic systems are approached in the course. | |||||
AAF1951 | LAB OF SIGNAL ANALYSIS AND MECHATRONICS | 1st | 2nd | 3 | N/D | ENG |
Educational objectives Course goals Signal processing algorithms are embedded nearly in every application that involves natural signal or data analysis and/or synthesis. The aim of this course is to provide a basic, yet comprehensive, introduction to the mathematical background to support the analysis of measurements as well as diagnosis and control of machines. The course reviews some of the most important mathematical methods of digital signal processing related to mechanical engineering, such as Discrete Fourier Transform (DFT), Short Time Fourier Transform (STFT), Wavelet Transform, Hilbert Transform and the Empirical Mode Decomposition, for the calculation of signal features in time and frequency domains. Exercises from example applications and on numerical signal processing are provided: the student will be guided to analyze real life signals with the aid of Matlab software. At the end of the course, the student will be able to evaluate the effects of signal processing and analysis on measurement data from real life machines and structures. These skills are essential e.g. in machine diagnostics, control engineering, machine automation and robotics. After the course, the student: • Is familiar with some of the most important methods of signal analysis in the field of mechanical engineering. In doing that, the student will be introduced to Matlab numerical computing environment, also with the support of shared codes and worked examples. The student will be guided to: | |||||
AAF2267 | LABORATORY OF MEASUREMENTS FOR THE CONSERVATION AND RESTORATION OF CULTURAL HERITAGE | 1st | 2nd | 3 | N/D | ITA |
Educational objectives The objective of the laboratory focuses on the application of knowledge of traditional measurement systems and some of the advanced and distributed monitoring technologies for the conservation and restoration of cultural heritage. The laboratory or ON-field experimental activities will be defined individually or in groups with the students. Eligibility will be awarded after a personal presentation of the activities carried out. | |||||
AAF1484 | Laboratory for structures calculation | 2nd | 1st | 3 | N/D | ITA |
Educational objectives To provide students with the basics of of computerized calculation of frames of beams, either naturally discrete or discretized. | |||||
AAF1535 | Laboratory for propulsion Systems and Vehicle Dynamics | 2nd | 1st | 6 | N/D | ITA |
Educational objectives
Give the student the basic knowledge on the use of | |||||
AAF1773 | RENEWABLE ENERGY SYSTEM DESIGN | 2nd | 1st | 3 | N/D | ENG |
Educational objectives RENEWABLE ENERGY SYSTEM DESIGN has the general training objective: an effective design of plants for distributed generation in urban and rural areas. | |||||
AAF1536 | Lab for Design and Building autovehicles | 2nd | 1st | 6 | N/D | ITA |
Educational objectives To provide theoretical and | |||||
AAF1491 | Laboratory for Safety in industrial Plants | 2nd | 1st | 3 | N/D | ITA |
Educational objectives
The particularly Prerequisite for | |||||
AAF1735 | LAB OF TURBULENCE AND COMBUSTION | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The Lab of Turbulence and Combustion is an integrative activity which introduces the student to the operational aspects related to the techniques of investigation and characterization of turbulent flames. The Lab offers to students the opportunity to learn the techniques used in modern research laboratories dedicated to the optimization of combustion processes, to develop advanced investigation skills and to apply the main experimental and numerical methods to the study of turbulent combustion. | |||||
AAF1486 | Laboratory for Vehicle aerodynamics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The Aerodynamics of Vehicle Laboratory is a supplementary activity (3CFU) aimed to introduce | |||||
AAF2436 | LAB OF ADVANCED FINITE ELEMENT MODELLING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to develop skills in the ability of applying advanced knowledge about finite element calculations. | |||||
AAF1534 | INTRODUCTION TO MODELLING AND SIMULATION OF TURBOLENT TRANSPORT PROCESSES | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives
To introduce | |||||
AAF1488 | Lab for Measurements for Biomechanics | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The aim of the course is to provide students with the basic knowledge needed to properly use the state of | |||||
AAF1480 | Laboratory for Noise and Vibrations Control | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives
The laboratory is | |||||
AAF1984 | LAB OF ADDITIVE MANUFACTURING | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives Provide the theoretical and practical abilities to fabricate a functional component via Additive Manufacturing technologies. In particular: - cabability to manage, repair and process a 3D model; - choice of the process parameters taking into account the post-processing and the further secondary operations; - spread among several secondary operations typical of AM technologies; predict the cost and time needed for the entire process. | |||||
AAF1963 | Lab of vehicle system dynamics and mechatronics | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives The course focuses on multibody modeling of vehicles and its subsystems. The student will acquire the fundamental elements to be able to develop and design a complete car or motorcycle by including the modeling of suspension elements with variable parameters and control systems for the implementation of actuators. | |||||
AAF2069 | LAB OF INDUSTRY 4.0 | 2nd | 2nd | 3 | N/D | ITA |
Educational objectives The course gives on-field experience to apply technologies of Industry 4.0. The course, as an extension of the Smart Factory course, develops one of its topics through the application of simulation models, business intelligence, machine learning, natural language processing, or defect detection and recognition. | |||||
AAF1953 | LAB OF VIRTUAL REALITY FOR HAPTIC EXPERIENCE | 2nd | 2nd | 3 | N/D | ENG |
Educational objectives Aim of the laboratory is developing virtual reality environments that through real time simulations may be interfaced with haptic sensors. | |||||
AAF1979 | LAB OF AUTONOMOUS DRIVING: CARS AND SWARMS | 2nd | 2nd | 6 | N/D | ENG |
Educational objectives The course aims to understand and develop advanced systems for assistance in driving autonomous vehicles. The student will acquire basic knowledge on devices and algorithms used by intelligent vehicles with particular attention to the ADAS systems. The student will be able to test specific sensors on electronic boards by implementing customized control logics. It will be possible to simulate the output of the camera, radar and LIDAR sensors in a 3D environment and apply machine learning and deep learning algorithms. |
Lesson | Year | Semester | CFU | SSD | Language |
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10592711 | Dynamics of Micro-Mechatronic Systems | 1st | 1st | 6 | ING-IND/13 | ENG |
Educational objectives Aim of the course is the study of electromechanical systems of dimensions close to that of the micrometer by means of physical -mathematical models with lumped and distributed parameters. Particular attention is also paid to the study of control techniques for the design of complex micro-mechatronic systems with the function of actuators and sensors. The application areas range from the control of mechanical vibrations and noise to micro robotics. | |||||
1022015 | SPECIAL TECHNOLOGIES | 1st | 2nd | 9 | ING-IND/16 | ITA |
Educational objectives The course is aimed at the creation of a knowledge-base, in the | |||||
1055978 | Measurement for mechanical systems and industry | 1st | 2nd | 6 | ING-IND/12 | ENG |
Educational objectives This class will provide the students with the ground knowledge to correctly design and set up a measurement chain or system, taking in account the specific needs of the instrument user. Specific attention will be given to applications aimed at mechanical production and manufacturing industry. The class comprises a number of laboratory lessons, which explain and go into the main experimental techniques and are considered a fundamental part of the course. | |||||
1045058 | MECHANICS OF ROBOT MANIPULATORS | 1st | 2nd | 6 | ING-IND/13 | ENG |
Educational objectives This course is addressed to kinematics and dynamics of industrial | |||||
1022657 | MANAGMENT OF INDUSTRIAL PLANTS | 2nd | 1st | 9 | ING-IND/17 | ITA |
Educational objectives OBJECTIVES. The course gives the key competences of operations management, both from an organisational-management and a technical-operational point of view. The expected learning outcomes are the capabilities to analyse the relationship of market and supply chain, the role and processes of the company within the supply chain, and the applying knowledge and understanding of the methodologies for production and inventory management. | |||||
1044017 | FLUID MACHINERY AND ENERGY SYSTEM DIAGNOSTICS | 2nd | 1st | 6 | ING-IND/08 | ITA |
Educational objectives The aim of this course is to give a systematic view of methods used in industrial diagnostic with a special interest on energy conversion systems and fluid machineries. The general objectives being the methodologies to failure mode analyses, fault detection and isolation. A peculiar attention will be given to AI based methods for the analysis of big-data collected in sensor networks. | |||||
10592761 | VEHICLE SYSTEM DYNAMICS AND MECHATRONICS | 2nd | 2nd | 6 | ING-IND/13 | ENG |
Educational objectives General objectives Specific objectives |
Lesson | Year | Semester | CFU | SSD | Language |
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1021788 | MATHEMATICAL PHYSICS | 1st | 1st | 6 | MAT/07 | ITA |
Educational objectives A) Learning of basic knowledge of mathematical models of Continuum Mechanics based on Partial Differential Equations. Learning of the main perturbative methods: direct perturbative method, multiple scales and boundary layers. B) Learning to set up and analyze problems for Partial Differential Equations. Learning to use the main perturbative methods when small parameters appear, also by means of qualitative analysis. D), E) Development of the ability to understand qualitatively the solution, to exchange the results and to seek help in textbooks or from experts. In this connection, construction and graphical visualization of solutions obtained by symbolic calculus (MUPAD toolbox for MATLAB). | |||||
1021834 | Mathematical models for engineering | 1st | 1st | 6 | MAT/05 | ITA |
Educational objectives We expect the student to learn the use of sequences and series of functions (in particular Fourier and power series) and to reconstruct signals via Laplace tranform. | |||||
1041454 | DYNAMICS OF ELECTRICAL MACHINES AND DRIVES | 2nd | 1st | 6 | ING-IND/32 | ENG |
Educational objectives The subject aims to guide the student in understanding the principles of operation of AC machines at variable speed. The module will provide methods to analyze the behaviour of AC drives both in steady state and during transients. Finally, it will give the student knowledge on how torque is controlled in these machines. | |||||
10592650 | ELECTRONIC SYSTEMS FOR MECHATRONICS | 2nd | 1st | 6 | ING-INF/01 | ITA |
Educational objectives GENERAL The course aims to give to the student the tools for the understanding and the design of electronic circuits and systems for mechatronics. SPECIFIC • Knowledge and understanding: Deep knowledge of the main electronic systems used in mechatronics, with particular reference to analog and digital control systems, sensors and actuators. • Applying knowledge and understanding: Ability to analyze and design electronic systems for mechatronics. Acknowledge of competences to design and make electronic circuits for control. Ability to interact and operate among the stakeholders belonging to the various disciplines involved in mechatronic systems design, making and management. • Making judgements: Ability to choose, compare and design state-of-the-art electronic systems for mechatronics. • Communication skills: Capability, analysis and comparison of state-of-the-art electronic systems for mechatronics. • Learning skills: Ability to learn for onboarding in a professional environment of design, making and management of electronic systems for mechatronics. | |||||
1055496 | Control problems in robotics | 2nd | 1st | 6 | ING-INF/04 | ENG |
Educational objectives General objectives The course is composed of two modules and presents a selection of advanced topics in Robotics and is intended as an introduction to research. Specific objectives Knowledge and understanding: Apply knowledge and understanding: Critical and judgment skills: Communication skills: Learning ability: |