Performance Analysis of Fin Geometry in Battery Thermal Management System

Effective thermal management is a critical prerequisite for ensuring the safety, performance, and operational longevity of lithium-ion batteries deployed in electric vehicles (EVs). This paper presents a computational investigation into the passive cooling of an 18650 cylindrical lithium-ion battery using axial fin structures under natural convection conditions. Five configurations are analysed: a baseline battery without fins, and four finned variants incorporating rectangular, I-shaped, trapezoidal, and T-shaped axial fins fabricated from aluminium. Three-dimensional geometric models were developed in CATIA and imported into ANSYS Fluent for transient Computational Fluid Dynamics (CFD) simulation under a 1C discharge heat generation rate. Thermal performance is evaluated based on battery temperature distribution, surrounding air temperature, and convective heat transfer coefficient. Results demonstrate that the T-shaped axial fin configuration achieves the lowest steady-state battery temperature of approximately 309 K — a reduction of 6 K relative to the unfinned baseline — and the lowest stabilised air temperature of 309.6 K. A subsequent material study on the best-performing geometry confirms copper as the superior fin material due to its higher thermal conductivity. The findings provide quantitative design guidance for passive, lightweight fin-based battery thermal management systems.

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Publication Details

Journal
i-manager s Journal on Material Science
Published
2026-10-08
DOI
https://doi.org/10.26634/jms.14.1.11273
Primary Topic
Advanced Battery Technologies Research
Type
article
Field-Weighted Citation Impact
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article

Performance Analysis of Fin Geometry in Battery Thermal Management System

Kiran Kumar Billa, Bunga Kiran Kumar, Shaik Abdulla, Tirlangi Gireesh et al.
i-manager s Journal on Material Science
Advanced Battery Technologies Research
article

Performance Analysis of Fin Geometry in Battery Thermal Management System

Kiran Kumar Billa, Bunga Kiran Kumar, Shaik Abdulla, Tirlangi Gireesh, Ungarala Venkatesh, Yarlagadda Chandra Sekhar, M. Vinod Kumar
article en

Abstract

Effective thermal management is a critical prerequisite for ensuring the safety, performance, and operational longevity of lithium-ion batteries deployed in electric vehicles (EVs). This paper presents a computational investigation into the passive cooling of an 18650 cylindrical lithium-ion battery using axial fin structures under natural convection conditions. Five configurations are analysed: a baseline battery without fins, and four finned variants incorporating rectangular, I-shaped, trapezoidal, and T-shaped axial fins fabricated from aluminium. Three-dimensional geometric models were developed in CATIA and imported into ANSYS Fluent for transient Computational Fluid Dynamics (CFD) simulation under a 1C discharge heat generation rate. Thermal performance is evaluated based on battery temperature distribution, surrounding air temperature, and convective heat transfer coefficient. Results demonstrate that the T-shaped axial fin configuration achieves the lowest steady-state battery temperature of approximately 309 K — a reduction of 6 K relative to the unfinned baseline — and the lowest stabilised air temperature of 309.6 K. A subsequent material study on the best-performing geometry confirms copper as the superior fin material due to its higher thermal conductivity. The findings provide quantitative design guidance for passive, lightweight fin-based battery thermal management systems.

i-manager s Journal on Material ScienceVol. 14(1)
Openalex Percentile: Top 21%
Advanced Battery Technologies Research
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