Lecturer(s)
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Frémund Václav, Ing. Ph.D.
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Burda Jan, doc. Ing. Ph.D.
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Šrajbr Jan, Ing. Ph.D.
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Kuhn Jan, doc. Ing. Ph.D.
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Kelemen Petr, Ing. Ph.D.
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Ťoupal Petr, Ing. Ph.D.
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Course content
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1. Power electronic components, basic concepts. 2. DC converters 3. Voltage source converters 4. Multilevel converters 5. Rectifiers 6. Current source converters 7. Frequency converters 1 8. Frequency converters 2 9. AC converters and resonant converters 10. Power electronics for road transport 11. Power electronics for rail transport 12. Power electronics for air and sea transport 13. Electromagnetic compatibility
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Learning activities and teaching methods
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Laboratory work, Lecture
- Preparation for comprehensive test (10-40)
- 10 hours per semester
- Graduate study programme term essay (40-50)
- 10 hours per semester
- Contact hours
- 26 hours per semester
- Practical training (number of hours)
- 26 hours per semester
- Preparation for an examination (30-60)
- 30 hours per semester
- Preparation for laboratory testing; outcome analysis (1-8)
- 6 hours per semester
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prerequisite |
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Knowledge |
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describe an electrical circuit |
describe the operation and properties of basic electronic components |
evaluate the influence of the circuit's electrical components on its function |
Skills |
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define requirements for power semiconductor converters |
explain the function of voltage and current types of converters |
explain control principles of voltage and currents source converters |
design a basic control algorithm for a drive with a power semiconductor converter |
prepare a laboratory workplace and perform an experiment in power electronics |
Competences |
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N/A |
N/A |
N/A |
learning outcomes |
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Knowledge |
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describe in detail the schematic and function of power semiconductor converters used in electromobility |
describe selected power semiconductor converter control algorithms |
describe the effect of converters on electromagnetic compatibility with other systems |
Skills |
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use known inverter topologies to design your own power circuit |
use advanced converter control algorithms |
design a simulation model of the inverter including control algorithms for the defined system |
evaluate obtained experimental or simulation results |
Competences |
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N/A |
N/A |
N/A |
teaching methods |
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Knowledge |
---|
Lecture |
Interactive lecture |
Individual study |
Laboratory work |
Skills |
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Practicum |
Laboratory work |
Interactive lecture |
Individual study |
Competences |
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Lecture |
Interactive lecture |
Individual study |
assessment methods |
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Knowledge |
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Combined exam |
Test |
Skills demonstration during practicum |
Skills |
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Combined exam |
Skills demonstration during practicum |
Continuous assessment |
Seminar work |
Competences |
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Combined exam |
Continuous assessment |
Recommended literature
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Bin Wu. High-power converters and AC drives. Hoboken, 2006. ISBN 978-0-471-73171-9.
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Kumar, L. Ashok. Power Converters for Electric Vehicles. Velká Británie, 2020. ISBN 9780367626853.
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Vondrášek František. Výkonová elektronika. Svazek 3, Měniče s vlastní komutací a bez komutace. Část 2, Měniče kmitočtu a střídavého napětí. Plzeň. 2017.
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