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Experimental verification of the AC resistance effect in Insulated Metal Substrate based Power Converters.pdf (522.4Kb)
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Title
Experimental verification of the AC resistance effect in Insulated Metal Substrate based Power Converters
Author
Aizpuru, Iosu
Arruti Romero, Asier
Agirrezabala, Eneko
Mazuela, Mikel
Author (from another institution)
Lajas Garcia, Miguel
Sanz-Alcaine, José Miguel
Pérez-Cebolla, Francisco José
Research Group
Almacenamiento de energía
Sistemas electrónicos de potencia aplicados al control de la energía eléctrica
Other institutions
Universidad de Zaragoza
Version
Postprint
Rights
© 2023 EPE Association
Access
Open access
URI
https://hdl.handle.net/20.500.11984/6371
Publisher’s version
https://doi.org/10.23919/EPE23ECCEEurope58414.2023.10264588
Published at
25th European Conference on Power Electronics and Applications (EPE'23 ECCE Europe) 
Publisher
IEEE
Keywords
High frequency power converter
Thermal management
Parasitic elements
Abstract
Insulated Metal Substrate (IMS) based power converters are an excellent solution for thermal dissipation of power converters, but they suffer for limited layer options generating parasitic elements sp ... [+]
Insulated Metal Substrate (IMS) based power converters are an excellent solution for thermal dissipation of power converters, but they suffer for limited layer options generating parasitic elements specially in High Frequency. The paper analyses and proposes experimental verification of IMS AC resistance in High Frequency power converter applications. The developed test bench can generate high current high frequency electrical signals in order to excite the IMS board parasitic AC resistances. The experimental validation highlights the importance of PCB lay-out in high frequency IMS boards where big area current loops and low copper areas increase significantly the resistance of the board. The developed tests verify a significant AC resistance effect in IMS boards with a temperature increase 4 times bigger at 500 kHz switching frequency than the equivalent DC current. [-]
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