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Segmented thermal resistance model of flat-plate CLPHP based on PEMFC cooling.

Authors :
Li, Yuyang
Xiao, Yanxiu
Cheng, Chuanxiao
Zhang, Zhenya
Zhang, Jun
Liu, Enhai
Source :
International Journal of Hydrogen Energy. Feb2024, Vol. 56, p259-270. 12p.
Publication Year :
2024

Abstract

As a passive heat transfer superconductor for proton exchange membrane fuel cell (PEMFC) cooling, the heat transfer performance and temperature uniformity of flat-plate closed loop pulsating heat pipe (CLPHP) are the key factors to determine its application efficiency. Based on the geometric structure and working medium thermophysical properties of flat-plate CLPHP, this study establishes segmented and integral thermal resistance theoretical models for the heat transfer properties of each section of the flat-plate CLPHP. The calculation accuracy of the segmented and integral thermal resistance models is compared through experimental verification. The results show that the segmented thermal resistance model's temperature variation and temperature uniformity are more accurate than that of the integral thermal resistance model when the flat-plate CLPHP is started, operated stably, or at higher heating power. However, the model calculation error is relatively large when the heating power is relatively high at 400 W, but the calculation accuracy of the segmented thermal resistance model in temperature and temperature uniformity is 2.32 and 5.99 times that of the integral thermal resistance model. The segmented thermal resistance model provides a theoretical basis for improving the calculation accuracy of flat-plate CLPHP coupled PEMFC cooling. • A segmented thermal resistance model of flat-plate CLPHP is proposed. • The segmental and integral thermal resistance simulation models of flat-plate CLPHP are established. • The segmented thermal resistance model has higher temperature calculation accuracy. • Segmented thermal resistance model optimizes simulation calculations for flat-plate CLPHP integrated PEMFC cooling. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03603199
Volume :
56
Database :
Academic Search Index
Journal :
International Journal of Hydrogen Energy
Publication Type :
Academic Journal
Accession number :
175454714
Full Text :
https://doi.org/10.1016/j.ijhydene.2023.12.179