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Steady-state temperature calculation tool for multilayer PCBs.pdf (5.796Mb)
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Izenburua
Steady-state temperature calculation tool for multilayer PCBs
Egilea
Gezala Rodero, Haitz cc
Garrido, David cc
Baraia-Etxaburu Zubiaurre, Igor
Aizpuru, Iosu cc
Paniagua Amillano, Julen cc
Argitalpen data
2025
Ikerketa taldea
Sistemas electrónicos de potencia aplicados al control de la energía eléctrica
Beste erakundeak
https://ror.org/00wvqgd19
Ingeteam (Spain)
Bertsioa
Postprinta
Dokumentu-mota
Artikulua
Hizkuntza
Ingelesa
Eskubideak
© 2025 IEEE
Sarbidea
Sarbide irekia
URI
https://hdl.handle.net/20.500.11984/13979
Argitaratzailearen bertsioa
https://doi.org/10.1109/TPEL.2025.3626813
Non argitaratua
IEEE Transactions on Power Electronics  Early Access
Argitaratzailea
IEEE
Gako-hitzak
Electro-thermal modelling
ODS 4 Educación de calidad
ODS 7 Energía asequible y no contaminante
ODS 9 Industria, innovación e infraestructura
UNESCO Sailkapena
 http://skos.um.es/unesco6/3307
Laburpena
The adoption of GaN-based devices in power converters offers significant improvements in efficiency and power density, but also intensifies thermal challenges by concentrating heat in smaller volumes. ... [+]
The adoption of GaN-based devices in power converters offers significant improvements in efficiency and power density, but also intensifies thermal challenges by concentrating heat in smaller volumes. High current and compact surface-mount device packaging in GaN-based designs increase localised temperatures on printed circuit boards (PCBs), creating hotspots that can degrade materials, damage components, and compromise overall reliability. Traditional computational fluid dynamics (CFD)-based thermal analysis has been used to model PCB thermal behaviour, but its high computational cost and long setup times make it unsuitable for early-stage design. This paper introduces a MATLAB®-implemented thermal analysis tool that models PCBs as electro-thermal networks based on their hardware configuration. The tool operates in two stages: (1) an electrical network computes the current distribution and Joule heating losses across traces and vias, and (2) a thermal network uses these losses, together with power dissipation from electronic components, to calculate the temperature distribution across the PCB. The networks are coupled iteratively to account for temperature-dependent effects. The tool supports flexible configurations for layers, materials (e.g., FR4, copper, thermal vias), and heat sink (HS) integration. Validation against CFD simulations and experimental measurements confirm the accuracy of the tool in estimating temperature distributions, ensuring more effective thermal management in high-density power converters. This approach provides a fast and reliable alternative to CFD, significantly accelerating the design optimisation process. [-]
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  • Artikuluak - Ingeniaritza [759]

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