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Module code: FT09.3 |
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2V+2U (4 hours per week) |
4 |
Semester: 2 |
Mandatory course: yes |
Language of instruction:
German |
Assessment:
Written exam 120 min.
[updated 30.09.2020]
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FT09.3 (P242-0044, P242-0045, P242-0046) Automotive Engineering, Bachelor, ASPO 01.10.2015
, semester 2, mandatory course
FT09.3 (P242-0044, P242-0045, P242-0046) Automotive Engineering, Bachelor, ASPO 01.04.2016
, semester 2, mandatory course
FT09.3 (P242-0044, P242-0045, P242-0046) Automotive Engineering, Bachelor, ASPO 01.10.2019
, semester 2, mandatory course
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60 class hours (= 45 clock hours) over a 15-week period. The total student study time is 120 hours (equivalent to 4 ECTS credits). There are therefore 75 hours available for class preparation and follow-up work and exam preparation.
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Recommended prerequisites (modules):
FT04.3 Engineering Mechanics I
[updated 16.02.2022]
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Recommended as prerequisite for:
FT16.1 Vehicle Superstructures and Lightweight Construction FT19.1 Passive Vehicle Safety FT26.1 Project Work 1
[updated 12.02.2020]
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Module coordinator:
Prof. Dr.-Ing. Ramona Hoffmann |
Lecturer: Prof. Dr.-Ing. Ramona Hoffmann
[updated 16.02.2022]
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Learning outcomes:
After successfully completing this module, students will have an overview of the basic stresses occurring on technical components and will be able to identify them for simple problems. They will be able to calculate the resulting component stresses and deformations as well as to verify the static or dynamic component safety. They will be able to solve simple component dimensioning tasks on the basis of given external loads.
[updated 30.09.2020]
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Module content:
1. Basic types of stress: Tension, compression, bending, shear force, bending, torsion (stress and deformation) 2. Instability due to buckling 3. Compound stresses and multiaxial stress states 4. Stress hypotheses 5. Notch effects 6. Fatigue behavior
[updated 30.09.2020]
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Teaching methods/Media:
- Lecture with integrated tutorials - Lecture notes
[updated 30.09.2020]
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Recommended or required reading:
/1/ Dankert, J.; Dankert, H.: Technische Mechanik. Wiesbaden: Vieweg+Teubner Fachverlage 2013 /2/ Hibbeler, R.C.: Technische Mechanik 2 - Festigkeitslehre. München: Pearson Studium 2013 /3/ Holzmann, G.; Meyer, H.; Schumpich, G,: Technische Mechanik. Wiesbaden: Vieweg+Teubner Fachverlage 2018 /4/ Läpple, V.: Einführung ind die Festigkeitslehre. Wiesbaden: Vieweg+Teubner Fachverlage 2016
[updated 30.09.2020]
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