Geometry-influenced cooling performance of lithium-ion battery

Fuente: arXiv
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Main Authors: Dubey, Dwijendra, Mishra, A., Ghosh, Subrata, Reddy, M. V., Pandey, Ramesh
Format: Preprint
Published: 2024
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author Dubey, Dwijendra
Mishra, A.
Ghosh, Subrata
Reddy, M. V.
Pandey, Ramesh
author_facet Dubey, Dwijendra
Mishra, A.
Ghosh, Subrata
Reddy, M. V.
Pandey, Ramesh
contents Battery geometry (shape and size) is one of the important parameters which governs the battery capacity and thermal behavior. In the dynamic conditions or during the operation, the performance of batteries become much more complex. Herein, the changes in thermal behavior of lithium-ion battery (LIB)by altering the geometry i.e., length to diameter ratio (l/d), is investigated. The geometries considered are named as large geometry (LG), datum geometry (DG) and small geometry (SG) with the l/d ratio of 5.25, 3.61, and 2.38, respectively. A three-dimensional (3D) multi-partition thermal model is adopted, and the numerical results are validated by the published experimental data. For three different cooling approaches such as radial, both-tab and mixed cooling, the average battery temperature and temperature heterogeneity are thoroughly examined considering the heat transfer coefficients (h) of50 and 100 W/m2K at discharge rates of 1, 2 and 3C. Amongst, the minimum average battery temperature is exhibited by DG, the minimum radial temperature heterogeneity is obtained from LG, and substantial outperformance in terms of faster cooling rate is identified for SG, irrespective of the cooling approach employed
format Preprint
id arxiv_https___arxiv_org_abs_2410_13513
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Geometry-influenced cooling performance of lithium-ion battery
Dubey, Dwijendra
Mishra, A.
Ghosh, Subrata
Reddy, M. V.
Pandey, Ramesh
Applied Physics
Battery geometry (shape and size) is one of the important parameters which governs the battery capacity and thermal behavior. In the dynamic conditions or during the operation, the performance of batteries become much more complex. Herein, the changes in thermal behavior of lithium-ion battery (LIB)by altering the geometry i.e., length to diameter ratio (l/d), is investigated. The geometries considered are named as large geometry (LG), datum geometry (DG) and small geometry (SG) with the l/d ratio of 5.25, 3.61, and 2.38, respectively. A three-dimensional (3D) multi-partition thermal model is adopted, and the numerical results are validated by the published experimental data. For three different cooling approaches such as radial, both-tab and mixed cooling, the average battery temperature and temperature heterogeneity are thoroughly examined considering the heat transfer coefficients (h) of50 and 100 W/m2K at discharge rates of 1, 2 and 3C. Amongst, the minimum average battery temperature is exhibited by DG, the minimum radial temperature heterogeneity is obtained from LG, and substantial outperformance in terms of faster cooling rate is identified for SG, irrespective of the cooling approach employed
title Geometry-influenced cooling performance of lithium-ion battery
topic Applied Physics
url https://arxiv.org/abs/2410.13513