Thermal profile analysis of Doubly-Fed induction generator based wind power converter with air and liquid cooling methods

Dao Zhou, Frede Blaabjerg, Mogens Lau, Michael Tonnes

Research output: Contribution to book/anthology/report/conference proceedingArticle in proceedingResearchpeer-review

23 Citations (Scopus)
110 Downloads (Pure)

Abstract

Today, wind power generation system keeps on moving from onshore to offshore and also upscaling in size. As the lifetime of the wind power converter is prolonged to 20–25 years, this paper will investigate and compare different cooling methods for power modules — the air cooling and the liquid cooling seen from a thermal profile assessment point of view. Firstly, an analytical approach from loss profile to thermal profile for the power semiconductor is proposed and verified in a 2 MW Doubly-Fed Induction Generator (DFIG) based wind turbine system. Then, the typical air cooling and liquid cooling in wind power converter are analyzed and compared in terms of the mean junction temperature and the junction temperature fluctuation. It is concluded that the liquid cooling approach has a similar junction temperature fluctuation but gives a lower mean junction temperature than the air cooling approach.
Original languageEnglish
Title of host publicationProceedings of the 15th European Conference on Power Electronics and Applications, EPE 2013
Number of pages10
PublisherIEEE Press
Publication date2013
Pages1-10
ISBN (Print)9781479901159
ISBN (Electronic)9781479901142, 978-147990116-6
DOIs
Publication statusPublished - 2013
EventEuropean Conference on Power Electronics and Applications (EPE) - Lille, France
Duration: 2 Sept 20136 Sept 2013
Conference number: 15

Conference

ConferenceEuropean Conference on Power Electronics and Applications (EPE)
Number15
Country/TerritoryFrance
CityLille
Period02/09/201306/09/2013

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