- Docente: Alessandro Marzani
- Crediti formativi: 12
- SSD: ICAR/08
- Lingua di insegnamento: Inglese
- Moduli: Alessandro Marzani (Modulo 1) Antonio Palermo (Modulo 2) Antonio Palermo (Modulo 3)
- Modalità didattica: Convenzionale - Lezioni in presenza (Modulo 1) Convenzionale - Lezioni in presenza (Modulo 2) Convenzionale - Lezioni in presenza (Modulo 3)
- Campus: Ravenna
- Corso: Laurea in Building Construction Engineering (cod. 5897)
-
Orario delle lezioni (Modulo 1)
dal 20/02/2024 al 04/06/2024
-
Orario delle lezioni (Modulo 2)
dal 21/02/2024 al 29/05/2024
-
Orario delle lezioni (Modulo 3)
dal 29/02/2024 al 05/06/2024
Conoscenze e abilità da conseguire
To provide the elements of solid mechanics useful in determining the stress and strain status of beams subject to the main stress characteristics: axial stress, bending moment, torsion and shear. To provide the basic knowledge of the mechanical properties of materials, experimental methods and quality control procedures. To make the students able to solve hyperstatic structures and perform structural safety assessment.
Contenuti
Requirements/Prior knowledge
A prior knowledge and understanding of Mathematics and Physicsis required to attend the course proficiently.
All lectures will be in English. It is therefore necessary to understand the English language to take advantage of the course and to use the provided teaching material.
Course Content
- Course introduction
- Static and kinematic of the rigid body
- Static and kinematic of a system of rigid bodies
- Internal action in a beam like solid
- Theory of statically determined structures
- Stress and Strain analysis
- Stress-strain relation in elastic materials
- Geometrical properties of mass distribution
- Problems of the Saint-Venant’s cylinder
- Theory of statically undetermined structures
- Force and deformation based methods
- Strength/failure criteria
- Structural elastic stability
Testi/Bibliografia
- Statics – Formulas and Problems, Engineering Mechanics 1. Dietmar Gross; Wolfgang Ehlers; Peter Wriggers; Jörg Schröder; Ralf Müller, 2017, Edition 1, Springer.
- Mechanics of Materials - Engineering Mechanics 2. Dietmar Gross; Werner Hauger; Jörg Schröder; Wolfgang A. Wall; Javier Bonet, 2018, Edition 1, Springer.
- Mechanics of Materials – Formulas and Problems, Engineering Mechanics 2. Dietmar Gross; Wolfgang Ehlers; Peter Wriggers; Jörg Schröder; Ralf Müller, 2017, Edition 1, Springer.
Metodi didattici
The course content will be entirely covered by the lectures. The course consists in lectures and on sessions devoted to exercises, which will cover the practical aspects of the lectures. The instructors will supervise students during the laboratory activities.
Modalità di verifica e valutazione dell'apprendimento
The assessment of the "expected learning outcomes" is composed of:
- written exam: 3 exercises on the topics of the course, 3 hour.
- oral exam: 3 questions on the topics of the course, 1 hour.
To obtain a passing grade (minimum is 18 points) students are required to demonstrate a knowledge of the key concepts of the subject, some ability for critical application, and a comprehensible use of technical language.
Higher grades (maximum is 30 points, cum laude) will be awarded to students who demonstrate an organic understanding of the subject, a high ability for critical application, and a clear and concise presentation of the contents.
In case of failure students can take any next final term, generally there are 6 final terms per academic year.
Strumenti a supporto della didattica
The teaching tools are graphic table, projector and PC.
Orario di ricevimento
Consulta il sito web di Alessandro Marzani
Consulta il sito web di Antonio Palermo
Consulta il sito web di Antonio Palermo
SDGs

L'insegnamento contribuisce al perseguimento degli Obiettivi di Sviluppo Sostenibile dell'Agenda 2030 dell'ONU.