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Performance Improvement of a Silicon Partial Power Converter over a Silicon Carbide Full Power Converter.pdf (1.949Mb)
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Izenburua
Performance Improvement of a Silicon Partial Power Converter over a Silicon Carbide Full Power Converter
Egilea
Anzola, Jon
Aizpuru, Iosu
Egilea (beste erakunde batekoa)
Sharma, Shrivatsal
Bhattacharya, Subhashish
Artal Sevil, Jesús Sergio
Ikerketa taldea
Almacenamiento de energía
Beste instituzio
North Carolina State University
Universidad de Zaragoza
Bertsioa
Postprinta
Eskubideak
© 2023 IEEE
Sarbidea
Sarbide bahitua
URI
https://hdl.handle.net/20.500.11984/6230
Argitaratzailearen bertsioa
https://doi.org/10.1109/TTE.2023.3292501
Non argitaratua
IEEE Transactions on Transportation Electrification  Vol. 10. N. 1. Pp. 1680-1691
Argitaratzailea
IEEE
Laburpena
This article studies the new benefits that partial power processing brings to Silicon (Si) devices compared to wide-bandgap technologies. To prove this, the proposed case study consists of an on-board ... [+]
This article studies the new benefits that partial power processing brings to Silicon (Si) devices compared to wide-bandgap technologies. To prove this, the proposed case study consists of an on-board charger (OBC) application in which a Si-based partial power converter (PPC) is compared with a Silicon Carbide (SiC) based full power converter (FPC). The OBC application considers three different technologies of lithium-ion batteries and the main comparison metrics are: semiconductor switching, temperature rise of semiconductors, volume and device losses (efficiency). This last one is oriented to energy losses (Wh) and not to power losses (W) as classical design. An analytical model is used to compute switching and conduction losses. Depending on the operating point, switching events are segregated into zero voltage switching (ZVS), incomplete ZVS and hard switching. It is shown that the Si-based PPC may enter non-ZVS in certain operating conditions. However, its efficiency remains above 99 %, producing up to 5 times lower energy losses than the SiC-based FPC. Also, the case temperature of the semiconductors is halved and a reduction in the volume and electrical stress of the devices is achieved. This permits a global multi-objective optimization. The results are experimentally validated using a 3 kW prototype of SiC-based FPC and Si-based PPC. [-]
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