Course
|
Credits
|
Scientific Disciplinary Sector Code
|
Contact Hours
|
Exercise Hours
|
Laboratory Hours
|
Personal Study Hours
|
Type of Activity
|
Language
|
20801736 -
MACHINE DESIGN
(objectives)
Learning outcomes Students will acquire: - basic knowledge in industrial design and drafting, with particular reference to the mechanical application field. The course aims at providing the students with the acquisition of basic skills for drawing all the main machine components and understanding drawings already made by others. After a brief introduction to the geometrical bases, it treats, according to the international standards, the rules and norms for the right representation of each component, by accounting for the function it plays into the device or assembly and for the cycle it experiences during its manufacturing. Students follow a practical training performing hand sketches.
Group:
CANALE I
-
LA BATTAGLIA VINCENZO
( syllabus)
The course aims at providing the students with the acquisition of basic skills for drawing all the main machine components and understanding drawings already made by others. After a brief introduction to the geometrical bases, it treats, according to the international standards, the rules and norms for the right representation of each component, by accounting for the function it plays into the device or assembly and for the cycle it experiences during its manufacturing. Students follow a practical training performing hand sketches.
( reference books)
CHIRONE, TORNINCASA, Disegno Tecnico Industriale, ed. Il Capitello, Torino.
Group:
CANALE II
-
BELLUCCI ROBERTO
( syllabus)
Students will acquire basic knowledge in industrial design and drafting, with particular reference to the mechanical application field.
During the course will be developed the acquisition of basic drawing skills main machine components and the understanding of mechanical drawings of machineries. After a brief introduction to the geometrical bases, the course treats, according to the international standards, the rules and the International standards for the right representation of each component, by accounting for the function it plays into the device or assembly and for the cycle it experiences during its manufacturing. Students follow a practical training performing hand sketches.
( reference books)
Readings/Bibliography - Chirone, Tornincasa, Disegno Tecnico Industriale, ed. Il Capitello, Torino. - UNI M1, Norme per il disegno tecnico, vol. 1,2, publ. Ente Nazionale Italiano di Unificazione, piazza Armando Diaz 2, 20123 Milano. - Manfè, Pozza, Scarato, Disegno meccanico, vol. 1, 2, 3, ed. Principato, Milano.
|
6
|
ING-IND/15
|
54
|
-
|
-
|
-
|
Core compulsory activities
|
ITA |
20802115 -
PHYSICS I
(objectives)
THE COURSE INTRODUCES THE SCIENTIFIC METHOD, PRESENTS NEWTON'S MECHANICS AND THE MAIN ELECTRIC AND MAGNETIC PHENOMENA, TOGETHER WITH THE PERTINENT LAWS. THE STUDENT BECOMES FAMILIAR WITH THE BASIC MODELS OF CLASSICAL PHYSICS AND, IN PARTICULAR, WITH SUCH CONCEPTS AS PHYSICAL QUANTITY, FIELD, CONSERVATION LAW. THE STUDENT IS ABLE TO APPLY THE ABOVE CONCEPTS TO THE SOLUTION OF SIMPLE PROBLEMS BY MEANS OF APPROPRIATE ANALYTICAL PROCEDURES.
|
|
20802115-1 -
FISICA I MODULO I
(objectives)
THE COURSE INTRODUCES THE SCIENTIFIC METHOD, PRESENTS NEWTON'S MECHANICS AND THE MAIN ELECTRIC AND MAGNETIC PHENOMENA, TOGETHER WITH THE PERTINENT LAWS. THE STUDENT BECOMES FAMILIAR WITH THE BASIC MODELS OF CLASSICAL PHYSICS AND, IN PARTICULAR, WITH SUCH CONCEPTS AS PHYSICAL QUANTITY, FIELD, CONSERVATION LAW. THE STUDENT IS ABLE TO APPLY THE ABOVE CONCEPTS TO THE SOLUTION OF SIMPLE PROBLEMS BY MEANS OF APPROPRIATE ANALYTICAL PROCEDURES.
|
6
|
FIS/01
|
54
|
-
|
-
|
-
|
Basic compulsory activities
|
ITA |
20802115-2 -
FISICA I MODULO II
(objectives)
THE COURSE INTRODUCES THE SCIENTIFIC METHOD, PRESENTS NEWTON'S MECHANICS AND THE MAIN ELECTRIC AND MAGNETIC PHENOMENA, TOGETHER WITH THE PERTINENT LAWS. THE STUDENT BECOMES FAMILIAR WITH THE BASIC MODELS OF CLASSICAL PHYSICS AND, IN PARTICULAR, WITH SUCH CONCEPTS AS PHYSICAL QUANTITY, FIELD, CONSERVATION LAW. THE STUDENT IS ABLE TO APPLY THE ABOVE CONCEPTS TO THE SOLUTION OF SIMPLE PROBLEMS BY MEANS OF APPROPRIATE ANALYTICAL PROCEDURES.
Group:
CANALE 1
-
Derived from
20802115-2 FISICA I MODULO II in INGEGNERIA ELETTRONICA (DM 270) L-8 CANALE 1 BORGHI RICCARDO
( syllabus)
1. Electrostatic force and field in vacuum - Electric charge and matter electronic structure. - Coulomb's law and Newton's law of universal gravitation. - Superposition principle. - Concept of field; scalar and vector fields; flux lines. - Electrostatic field. - Motion of a charged particle in a electrostatic field. - Electrostatic field flux and Gauss's law. - Gauss's law applications to charged distributions having planar, cylindrical and spherical symmetry.
2. Electric work and electrostatic potential - Electrostatic field circulation integral; conservative property of the electrostatic field. - Electric potential computation. - Electric potential energy. - Relationship between electrostatic field and potential: gradient and equipotential surfaces.
3. Conductors and dielectrics - Electric properties of conductors. - Electrostatic induction; Faraday cage. - Capacitance; capacitor. - Capacitors in series and parallel; capacitor energy. - Dielectrics, electric polarization and dielectric permittivity. - D field and corresponding Gauss's law.
4. Electric current - Electric current. Current density field J. - Stationary conditions. Solenoidal property of the field J. - local form of the Ohm's law. - Ohm's law and Joule effect. - Resistors in series and parallel. - Electromotive field and electromotive force. - Charging and discharging of a capacitor. - Kirchhoff's circuit laws.
5. Magnetic field - Magnetic interactions. - Magnetic induction field B; Lorentz force. - Biot-Savart law. - Magnetic force on a current carrying conductor. - Torque on a current carrying rectangular coil in a magnetic field. - Charged particle motion in a magnetic field. - Mass spectrometer and velocity selector. - Solenoidal property of the field B; Gauss's law for the magnetic field.
6. Magnetic field sources - Magnetic field of a current. - Ampère-Laplace law applications: straight wire, circular coil. - Forces between current carrying wires. - Ampère's circuital law (in integral form) and applications. - Magnetic properties of matter: diamagnetic, paramagnetic and ferromagnetic materials. - H field and its circulation integral.
7. Electromagnetic induction - Faraday's law. Lenz's law. - Induced and motional Electromotive force. - Inductance. Charging and discharging of an inductor. - Magnetic energy. - Mutual inductance. - Ampere-Maxwell's law. Displacement current. - Maxwell equations in integral form.
( reference books)
P. Mazzoldi, M. Nigro, C. Voci, "Elementi di Fisica. Vol. II: Elettromagnetismo - Onde", seconda edizione, Edises, Napoli
Group:
CANALE 2
-
Derived from
20802115-2 FISICA I MODULO II in INGEGNERIA ELETTRONICA (DM 270) L-8 CANALE 2 SILVA ENRICO
( syllabus)
1. Electrostatic force and field in vacuum - Electric charge and matter electronic structure. - Coulomb's law and Newton's law of universal gravitation. - Superposition principle. - Concept of field; scalar and vector fields; flux lines. - Electrostatic field. - Motion of a charged particle in a electrostatic field. - Electrostatic field flux and Gauss's law. - Gauss's law applications to charged distributions having planar, cylindrical and spherical symmetry.
2. Electric work and electrostatic potential - Electrostatic field circulation integral; conservative property of the electrostatic field. - Electric potential computation. - Electric potential energy. - Relationship between electrostatic field and potential: gradient and equipotential surfaces.
3. Conductors and dielectrics - Electric properties of conductors. - Electrostatic induction; Faraday cage. - Capacitance; capacitor. - Capacitors in series and parallel; capacitor energy. - Dielectrics, electric polarization and dielectric permittivity. - D field and corresponding Gauss's law.
4. Electric current - Electric current. Current density field J. - Stationary conditions. Solenoidal property of the field J. - local form of the Ohm's law. - Ohm's law and Joule effect. - Resistors in series and parallel. - Electromotive field and electromotive force. - Charging and discharging of a capacitor. - Kirchhoff's circuit laws.
5. Magnetic field - Magnetic interactions. - Magnetic induction field B; Lorentz force. - Biot-Savart law. - Magnetic force on a current carrying conductor. - Torque on a current carrying rectangular coil in a magnetic field. - Charged particle motion in a magnetic field. - Mass spectrometer and velocity selector. - Solenoidal property of the field B; Gauss's law for the magnetic field.
6. Magnetic field sources - Magnetic field of a current. - Ampère-Laplace law applications: straight wire, circular coil. - Forces between current carrying wires. - Ampère's circuital law (in integral form) and applications. - Magnetic properties of matter: diamagnetic, paramagnetic and ferromagnetic materials. - H field and its circulation integral.
7. Electromagnetic induction - Faraday's law. Lenz's law. - Induced and motional Electromotive force. - Inductance. Charging and discharging of an inductor. - Magnetic energy. - Mutual inductance. - Ampere-Maxwell's law. Displacement current. - Maxwell equations in integral form.
( reference books)
P. Mazzoldi, M. Nigro, C. Voci, "Elementi di Fisica. Vol. II: Elettromagnetismo - Onde", seconda edizione, Edises, Napoli
Group:
CANALE 3
-
Derived from
20802115-2 FISICA I MODULO II in INGEGNERIA ELETTRONICA (DM 270) L-8 CANALE 3 MONACELLI PIERO
( syllabus)
1. Electrostatic force and field in vacuum - Electric charge and matter electronic structure. - Coulomb's law and Newton's law of universal gravitation. - Superposition principle. - Concept of field; scalar and vector fields; flux lines. - Electrostatic field. - Motion of a charged particle in a electrostatic field. - Electrostatic field flux and Gauss's law. - Gauss's law applications to charged distributions having planar, cylindrical and spherical symmetry.
2. Electric work and electrostatic potential - Electrostatic field circulation integral; conservative property of the electrostatic field. - Electric potential computation. - Electric potential energy. - Relationship between electrostatic field and potential: gradient and equipotential surfaces.
3. Conductors and dielectrics - Electric properties of conductors. - Electrostatic induction; Faraday cage. - Capacitance; capacitor. - Capacitors in series and parallel; capacitor energy. - Dielectrics, electric polarization and dielectric permittivity. - D field and corresponding Gauss's law.
4. Electric current - Electric current. Current density field J. - Stationary conditions. Solenoidal property of the field J. - local form of the Ohm's law. - Ohm's law and Joule effect. - Resistors in series and parallel. - Electromotive field and electromotive force. - Charging and discharging of a capacitor. - Kirchhoff's circuit laws.
5. Magnetic field - Magnetic interactions. - Magnetic induction field B; Lorentz force. - Biot-Savart law. - Magnetic force on a current carrying conductor. - Torque on a current carrying rectangular coil in a magnetic field. - Charged particle motion in a magnetic field. - Mass spectrometer and velocity selector. - Solenoidal property of the field B; Gauss's law for the magnetic field.
6. Magnetic field sources - Magnetic field of a current. - Ampère-Laplace law applications: straight wire, circular coil. - Forces between current carrying wires. - Ampère's circuital law (in integral form) and applications. - Magnetic properties of matter: diamagnetic, paramagnetic and ferromagnetic materials. - H field and its circulation integral.
7. Electromagnetic induction - Faraday's law. Lenz's law. - Induced and motional Electromotive force. - Inductance. Charging and discharging of an inductor. - Magnetic energy. - Mutual inductance. - Ampere-Maxwell's law. Displacement current. - Maxwell equations in integral form.
( reference books)
P. Mazzoldi, M. Nigro, C. Voci, "Elementi di Fisica. Vol. II: Elettromagnetismo - Onde", seconda edizione, Edises, Napoli
Group:
CANALE 4
-
Derived from
20802115-2 FISICA I MODULO II in INGEGNERIA ELETTRONICA (DM 270) L-8 CANALE 4 BORGHI RICCARDO
( syllabus)
1. Electrostatic force and field in vacuum - Electric charge and matter electronic structure. - Coulomb's law and Newton's law of universal gravitation. - Superposition principle. - Concept of field; scalar and vector fields; flux lines. - Electrostatic field. - Motion of a charged particle in a electrostatic field. - Electrostatic field flux and Gauss's law. - Gauss's law applications to charged distributions having planar, cylindrical and spherical symmetry.
2. Electric work and electrostatic potential - Electrostatic field circulation integral; conservative property of the electrostatic field. - Electric potential computation. - Electric potential energy. - Relationship between electrostatic field and potential: gradient and equipotential surfaces.
3. Conductors and dielectrics - Electric properties of conductors. - Electrostatic induction; Faraday cage. - Capacitance; capacitor. - Capacitors in series and parallel; capacitor energy. - Dielectrics, electric polarization and dielectric permittivity. - D field and corresponding Gauss's law.
4. Electric current - Electric current. Current density field J. - Stationary conditions. Solenoidal property of the field J. - local form of the Ohm's law. - Ohm's law and Joule effect. - Resistors in series and parallel. - Electromotive field and electromotive force. - Charging and discharging of a capacitor. - Kirchhoff's circuit laws.
5. Magnetic field - Magnetic interactions. - Magnetic induction field B; Lorentz force. - Biot-Savart law. - Magnetic force on a current carrying conductor. - Torque on a current carrying rectangular coil in a magnetic field. - Charged particle motion in a magnetic field. - Mass spectrometer and velocity selector. - Solenoidal property of the field B; Gauss's law for the magnetic field.
6. Magnetic field sources - Magnetic field of a current. - Ampère-Laplace law applications: straight wire, circular coil. - Forces between current carrying wires. - Ampère's circuital law (in integral form) and applications. - Magnetic properties of matter: diamagnetic, paramagnetic and ferromagnetic materials. - H field and its circulation integral.
7. Electromagnetic induction - Faraday's law. Lenz's law. - Induced and motional Electromotive force. - Inductance. Charging and discharging of an inductor. - Magnetic energy. - Mutual inductance. - Ampere-Maxwell's law. Displacement current. - Maxwell equations in integral form.
( reference books)
P. Mazzoldi, M. Nigro, C. Voci, "Elementi di Fisica. Vol. II: Elettromagnetismo - Onde", seconda edizione, Edises, Napoli
Group:
CANALE 5
-
Derived from
20802115-2 FISICA I MODULO II in INGEGNERIA ELETTRONICA (DM 270) L-8 CANALE 5 POMPEO NICOLA
( syllabus)
1. Electrostatic force and field in vacuum - Electric charge and matter electronic structure. - Coulomb's law and Newton's law of universal gravitation. - Superposition principle. - Concept of field; scalar and vector fields; flux lines. - Electrostatic field. - Motion of a charged particle in a electrostatic field. - Electrostatic field flux and Gauss's law. - Gauss's law applications to charged distributions having planar, cylindrical and spherical symmetry.
2. Electric work and electrostatic potential - Electrostatic field circulation integral; conservative property of the electrostatic field. - Electric potential computation. - Electric potential energy. - Relationship between electrostatic field and potential: gradient and equipotential surfaces.
3. Conductors and dielectrics - Electric properties of conductors. - Electrostatic induction; Faraday cage. - Capacitance; capacitor. - Capacitors in series and parallel; capacitor energy. - Dielectrics, electric polarization and dielectric permittivity. - D field and corresponding Gauss's law.
4. Electric current - Electric current. Current density field J. - Stationary conditions. Solenoidal property of the field J. - local form of the Ohm's law. - Ohm's law and Joule effect. - Resistors in series and parallel. - Electromotive field and electromotive force. - Charging and discharging of a capacitor. - Kirchhoff's circuit laws.
5. Magnetic field - Magnetic interactions. - Magnetic induction field B; Lorentz force. - Biot-Savart law. - Magnetic force on a current carrying conductor. - Torque on a current carrying rectangular coil in a magnetic field. - Charged particle motion in a magnetic field. - Mass spectrometer and velocity selector. - Solenoidal property of the field B; Gauss's law for the magnetic field.
6. Magnetic field sources - Magnetic field of a current. - Ampère-Laplace law applications: straight wire, circular coil. - Forces between current carrying wires. - Ampère's circuital law (in integral form) and applications. - Magnetic properties of matter: diamagnetic, paramagnetic and ferromagnetic materials. - H field and its circulation integral.
7. Electromagnetic induction - Faraday's law. Lenz's law. - Induced and motional Electromotive force. - Inductance. Charging and discharging of an inductor. - Magnetic energy. - Mutual inductance. - Ampere-Maxwell's law. Displacement current. - Maxwell equations in integral form.
( reference books)
P. Mazzoldi, M. Nigro, C. Voci, "Elementi di Fisica. Vol. II: Elettromagnetismo - Onde", seconda edizione, Edises, Napoli
|
6
|
FIS/01
|
54
|
-
|
-
|
-
|
Basic compulsory activities
|
ITA |
20802116 -
FUNDAMENTALS OF CHEMISTRY
(objectives)
The course aims to provide students with the tools necessary to frame in a logical and sequential way, not merely descriptive, the main chemical and physico-chemical phenomena related to the microscopic and macroscopic behavior of matter.
Group:
CANALE 3
-
DE SANTIS SERENA
( syllabus)
Atom Structure: orbitals, poly-electron atoms, periodic table; bonds in chemistry (Lewis theory and VSEPR, Valence bond theory and hybridization); delocalized bond. Mass relationship in chemical reactions; redox and oxidation number. Solids: metallic, ionic, covalent and molecular crystals (weak bonds: van der Waals and hydrogen bond) Gases: the ideal gas law, gas mixture, Dalton law, partial pressures. Thermodynamics: nature and type of energy, the zero law of T.D., heat capacity, the first law of TD and Enthalphy. Calorimetry and thermochemistry. Born-Haber cycle; Carnot cycle. The second law of TD, Kelvin and Clausius statements, entropy and free energy, equilibrium conditions. Liquids: saturation vapor pressure, Clapeyron law (thermodynamic demonstration), phase change, phase diagrams. Variance. Chemical equilibrium: the equilibrium constant and the equilibrium law, heterogeneous equilibrium, thermal dissociation and dissociation degree. Properties of liquid solutions: concentration units, the Raoult law and distillation, colligatives properties and freezing diagram, electrolytes. Arrhenius, Brönsted and Lewis acids and bases; pH; determination of pH for acidic and basic solutions, salt solutions, buffers.
Group:
CANALE 5
-
SOTGIU GIOVANNI
( syllabus)
Atom Structure: orbitals, poly-electron atoms, periodic table; covalent bond, delocalized bond. Mass relationship in chemical reactions; redox and oxidation number. Solids: metallic crystal, ionic crystal, molecular crystal, covalent crystal. Gases: the ideal gas law, partial pressures. Thermodynamics: nature and type of energy, the zero law of T.D., heat capacity, the first law of TD and Enthalphy, the second law of TD, entropy and free energy, equilibrium conditions. Liquids: phase change, phase diagrams. Chemical equilibrium: the equilibrium constant and the equilibrium law Properties of liquid solutions: concentration units, the Raoult law and distillation, colligatives properties and freezing diagram, electrolytes. Solutions of strong and weak electrolytes. Acids and bases, pH; Salt hydrolysis; buffer solutions.
( reference books)
Lecture notes o Depaoli - Chimica Generale ed Inorganica - Ed. Ambrosiana (teoria) o Silvestroni, Rallo - Problemi di Chimica Generale - Ed. Masson (esercizi) o Palmisano, Schiavello – Fondamenti di Chimica - EDISES
|
9
|
CHIM/07
|
81
|
-
|
-
|
-
|
Basic compulsory activities
|
ITA |
20202021 -
ENGLISH LANGUAGE - PASS/FAIL CERTIFICATE
|
3
|
|
24
|
-
|
-
|
-
|
Final examination and foreign language test
|
ITA |