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Identification of spatial temperature gradient in large format lithium battery using a multilayer thermal model.

Authors :
Li, Dongdong
Yang, Lin
Source :
International Journal of Energy Research; Jan2020, Vol. 44 Issue 1, p282-297, 16p, 5 Diagrams, 3 Charts, 6 Graphs
Publication Year :
2020

Abstract

Summary: The spatial resolving of temperature gradient is a key but challenging issue for the loading performance, aging evaluation, and safety guarantee of large format lithium battery, while the internal temperature cannot be measured directly in field. Notable temperature difference of large format battery emerges in heavy load applications. This paper tries to solve spatial‐distributed temperature gradient by proposing a novel method. The multilayer thermal model and the real‐time method based on this model are firstly proposed to noninvasively identify the spatial temperature gradient of the battery. And the thermal conduction resistance of the battery along aging are estimated by the extended lumped‐parameter model and forgetting factor recursive least square algorithm, while the convection resistance and heat capacity can be estimated by the lumped parameter model and least square algorithm. The relation between the temperature sensor number and total thermal nodes is then derived by the experiment. Finally, the proposed method is systematically verified through the simulation and experiment. Both the spatial distribution and the highest node of the battery temperature are obtained with promising accuracy and robustness. And it can be implemented in battery management systems for various online applications such as electric vehicles and hybrid electric vehicles. A multilayer thermal model is proposed for the identification of spatial‐resolved temperature gradient in battery.The extended lumped‐parameter model is proposed to estimate the conduction resistance of battery.The relation between the temperature sensor number and total thermal nodes is derived by the experiment data.The spatial‐resolved temperature gradient and the highest temperature in large format laminated battery are real‐time identified based on the battery surface temperature measurement.The proposed method is systematically verified through simulation and experiment with promising outcomes. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0363907X
Volume :
44
Issue :
1
Database :
Complementary Index
Journal :
International Journal of Energy Research
Publication Type :
Academic Journal
Accession number :
140854659
Full Text :
https://doi.org/10.1002/er.4914