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INTEGRATED COURSE OF nZEB BUILDINGS Integrated educational activity
Course Sheet Academic Year of enrolment:
Hours of classroom activity:
Prerequisites:
PART 1
Knowledges of applied thermodynamics and heat transfer
PART 2
The knowledge and the skills acquired in the courses of Structural Design, Technical Physics and Sustainable Building Design are essential.
Objectives
Contents PART 1
- History and development of renewable energies
- Energy production from wind energy
- Energy production from photovoltaic
- Solar thermal production
- Geothermal HVAC
PART 2
Italian and European technical rules and legislation. Materials and construction systems for nZEB buildings. Stratigraphy of the building envelope, thermal bridges and construction nodes. Design, modeling, analysis and verification of load-bearing systems and components in solid and laminated timber for light and energy-efficient buildings. Influence of environmental conditions and external actions. Choice and design of connections. Safety against fire and seismic actions. Durability
Extended Syllabus PART 1
History and Development of Renewable Energies
Analysis of the international and national renewable energies framework
Renewable energies future scenarios
WIND ENERGY
Wind resource assessment
Wind turbine typologies
Wind turbine energy production
Wind farm environmental impacts
PV SYSTEMS
Solar resource assessment
PV modules
PV energy assessment
PV systems design
THERMAL SOLAR SYSTEMS
GEOTHERMAL SYSTEMS
PART 2
Module 0 - Introduction to the course
The energy metabolism in buildings
The nZEB building and its peculiarities
Module 1 - Directives and technical reference standards
From the European Directive 2010/31/EU to the Ministerial Decree of 26 June 2015
Examples of Italian standards and protocols
Module 2 - Materials and construction systems
Physical, mechanical and thermal properties of the main building materials
Comparison between light timber systems and massive masonry systems
Module 3 - Building envelope
Functional layers of the opaque envelope
Point and linear thermal bridges
Construction nodes and operative instructions
Module 4 - nZEB buildings with timber supporting system
Anatomy and characteristics of wood as a structural material
Strength classes
Influence of environmental conditions, durability and degradation of wood
Recurring structural types and their sizing
Solid timber elements versus X-LAM panels
Methods of analysis and calculation according to Eurocodes and NTC2018
Verification of ultimate and service limit states for frame structures
Verification of ultimate and service limit states for panel structures
Safety against fire
Timber constructions in seismic areas
Recommended Bibliography PART 1
Slides of the course lessons
PART 2
Essential bibliography:
- Lecture notes.
- NTC 2018 and Circolare 2019.
Recommended bibliography:
- EN 1995 (part 1-1 e part 1-2).
- Piazza M., Tomasi R., Modena R., Strutture in legno - Materiale, calcolo e progetto secondo le nuove normative europee, Hoepli, 2005.
- Arieti F., Progettare edifici a energia zero, II ed., Maggioli Editore, 2021.
Teaching Methods PART 1
Frontal lessons and design of renewable systems in preliminary and/or final forms.
PART 2
The teaching is organized into lectures and practical exercises. The lessons will cover the theoretical aspects of the subject and will serve to correctly address the practical activities required to the student. The exercises will range from simple applicative examples, aimed at clarifying the theoretical topics covered in the class, to the progressive execution of a more complex design project having as its object the analysis and verification of a nearly zero energy building with a timber load-bearing system.
The activity required to the student consists in the study of the topics covered by the course program, based mainly on the recommended bibliography and possibly on other reference texts, in the execution of the assigned project and in the preparation for the final exam. The delivery of the project work is an indispensable requirement to be admitted to the exam.
Evaluation methods Verification of learning:
PART 1
All the course arguments will be verified both by realizing preliminary/final designs and by an oral exam that will test the theoretical basis behind the designs presented.
PART 2
Learning verification methods will take place systematically through:
- instant polls and evaluation tests of the acquired knowledge at the end of each topic;
- regular reviews of the assigned project;
- final exam.
The final exam aims to ascertain the acquisition of the knowledge and skills expected by the student. To be admitted, it is necessary to submit the project work carried out under the supervision of the professor during the class period. The final exam includes an oral interview lasting about 30-45 minutes divided into two main phases: a first phase in which the student will have to present and discuss the project work in detail, and a second phase in which the student will be asked to answer three out of a maximum of five questions relating to the fundamental thematic areas of the course. For each question, the committee will evaluate the candidate's ability to present the topics being tested in a clear, complete and technical manner, as well as the student's reasoning and problem-solving skills and his degree of in-depth study of the subject. The final grade for this teaching module, expressed out of thirty, will be assigned according to the following proportion:
- 40% for the design project;
- 60% for the final oral exam.
The final grade for the Integrated Course will be the average of the grades that each student has received in the two modules.
Contacts/More Information Student consultations will be held both in presence and in remote. It will be possible to have consultation hours also out of office hours by preliminary emailing the professor.