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Module code: WIBASc435 |
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2V+2U (4 hours per week) |
5 |
Semester: 4 |
Mandatory course: yes |
Language of instruction:
German |
Assessment:
Written exam (1 point can be achieved by calculating an exercise in advance)
[updated 13.09.2018]
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WIBASc435 (P450-0095) Industrial Engineering, Bachelor, ASPO 01.10.2013
, semester 4, mandatory course
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60 class hours (= 45 clock hours) over a 15-week period. The total student study time is 150 hours (equivalent to 5 ECTS credits). There are therefore 105 hours available for class preparation and follow-up work and exam preparation.
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Recommended prerequisites (modules):
WIBASc145 Physics WIBASc165 Mathematics I
[updated 01.02.2020]
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Recommended as prerequisite for:
WIBASc-525-625-Ing10 Principles of Supply Networks and Systems WIBASc-525-625-Ing29 Battery System Technology WIBASc-525-625-Ing9 Introduction to Energy Technology
[updated 24.01.2022]
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Module coordinator:
Prof. Dr. Frank Ulrich Rückert |
Lecturer: Prof. Dr. Dirk Hübner Prof. Dr. Frank Ulrich Rückert
[updated 01.02.2020]
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Learning outcomes:
- After successfully completing this module, students will have a sound understanding of thermodynamics. - They will have additional knowledge with regard to material and energy balancing. - Students will be able to apply both the knowledge acquired in this course and the knowledge acquired regarding real power plant processes from the lecture "Einführung in die Energietechnik". - They will be able to assess the efficiency of technical systems. - They will be able to balance and evaluate technical processes using the 1st and 2nd laws of thermodynamics. - They will have experience in handling thermal and caloric state variables. - They will be familiar with different thermodynamic systems and can apply the different state changes to them. - They will be able to describe and evaluate Carnot cycle processes with simple state changes
[updated 13.09.2018]
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Module content:
1. State variables 2. Thermodynamic systems 3. Materials balance 4. Forms of energy 5. Energy balance (1st law of thermodynamics) 6. Reversibility and entropy (2nd law of thermodynamics) 7. Isobaric, isothermic, isochoric and isentropic state changes 8. Thermodynamic cycle 9. Vapor 10. Heat transfer 11. Combustion theory
[updated 13.09.2018]
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Teaching methods/Media:
Printed lecture notes (regularly revised), blackboard with additional practical examples, exercise sheets.
[updated 13.09.2018]
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Recommended or required reading:
_ Baehr, H.D./Kabelac, S.: Thermodynamik, 12. Auflage, Springer Verlag, 2012 _ Böckh/Cizman/Schlachter: Grundlagen der technischen Thermodynamik, Fortis Verlag, 1999 _ Bosnjakovic/Knoche: Technische Thermodynamik, Steinkopff, Darmstadt, 1992 _ Cerbe/Hoffmann: Einführung in die Thermodynamik, Hanser Verlag, 2002 _ Langeheinecke/Jany/Sapper: Thermodynamik für Ingenieure, Vieweg, 2004
[updated 13.09.2018]
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