Research Article

Advanced thermal management in aircraft lithium-ion battery packs: optimization of heat dissipation using heat spreaders and phase change materials

Volume: 11 Number: 5 October 21, 2025
  • Srinivas Mallimoggala *
  • K Rama Devi
EN

Advanced thermal management in aircraft lithium-ion battery packs: optimization of heat dissipation using heat spreaders and phase change materials

Abstract

Lithiumion battery packs are essential in aviation, particularly for aircraft like the Cessna, Cirrus, and Piper models usually with 24V, and 16Ah to 35Ah capacities, depending on the specific model and avionics package installed, due to their high energy density and weight efficiency, which are critical for optimizing performance and fuel economy. This paper makes an exploration when it comes to spreading the heat from Auxiliary Power Unit (APU) battery packs with various cooling methods. This study addresses thermal management challenges, including the risk of thermal runaway, which can jeopardize safety challenges by optimizing heat dissipation in a 7s4p battery pack used in these aircraft, employing cooling techniques such as air cooling, phase change materials (PCMs), and aluminum-based heat spreaders (Al 3003-H18 and Al 6063-T83) to meet typical aviation requirements for reliability and efficiency. The simulations proved by COMSOL Multiphysics® pointed out that the aluminum variants especially the Al 3003-H18 significantly reduced peak temperatures (64.27 °C) compared to air cooling (82.36°C) at 8C, thus offered best thermal regime capability and managed the peak temperature as well as the voltage across the different rates of discharged. Pearson’s correlation coefficient analysis also showed positive higher order linear regression between aluminum-based models highlighting their efficiency in dealing with the heat generation or thermal runaway. This work extends existing literature by applying aluminum heat spreaders for aviation-specific applications, offering new insights into the relationship between thermal properties and cooling strategies under high discharge conditions, thereby enhancing both safety and battery longevity in critical aviation operations.

Keywords

References

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Details

Primary Language

English

Subjects

Biomedical Fluid Mechanics

Journal Section

Research Article

Authors

Srinivas Mallimoggala * This is me
0009-0008-2236-6878
India

Publication Date

October 21, 2025

Submission Date

September 28, 2024

Acceptance Date

December 10, 2024

Published in Issue

Year 2025 Volume: 11 Number: 5

APA
Mallimoggala, S., & Devi, K. R. (2025). Advanced thermal management in aircraft lithium-ion battery packs: optimization of heat dissipation using heat spreaders and phase change materials. Journal of Thermal Engineering, 11(5), 1420-1438. https://doi.org/10.14744/thermal.0000984
AMA
1.Mallimoggala S, Devi KR. Advanced thermal management in aircraft lithium-ion battery packs: optimization of heat dissipation using heat spreaders and phase change materials. Journal of Thermal Engineering. 2025;11(5):1420-1438. doi:10.14744/thermal.0000984
Chicago
Mallimoggala, Srinivas, and K Rama Devi. 2025. “Advanced Thermal Management in Aircraft Lithium-Ion Battery Packs: Optimization of Heat Dissipation Using Heat Spreaders and Phase Change Materials”. Journal of Thermal Engineering 11 (5): 1420-38. https://doi.org/10.14744/thermal.0000984.
EndNote
Mallimoggala S, Devi KR (October 1, 2025) Advanced thermal management in aircraft lithium-ion battery packs: optimization of heat dissipation using heat spreaders and phase change materials. Journal of Thermal Engineering 11 5 1420–1438.
IEEE
[1]S. Mallimoggala and K. R. Devi, “Advanced thermal management in aircraft lithium-ion battery packs: optimization of heat dissipation using heat spreaders and phase change materials”, Journal of Thermal Engineering, vol. 11, no. 5, pp. 1420–1438, Oct. 2025, doi: 10.14744/thermal.0000984.
ISNAD
Mallimoggala, Srinivas - Devi, K Rama. “Advanced Thermal Management in Aircraft Lithium-Ion Battery Packs: Optimization of Heat Dissipation Using Heat Spreaders and Phase Change Materials”. Journal of Thermal Engineering 11/5 (October 1, 2025): 1420-1438. https://doi.org/10.14744/thermal.0000984.
JAMA
1.Mallimoggala S, Devi KR. Advanced thermal management in aircraft lithium-ion battery packs: optimization of heat dissipation using heat spreaders and phase change materials. Journal of Thermal Engineering. 2025;11:1420–1438.
MLA
Mallimoggala, Srinivas, and K Rama Devi. “Advanced Thermal Management in Aircraft Lithium-Ion Battery Packs: Optimization of Heat Dissipation Using Heat Spreaders and Phase Change Materials”. Journal of Thermal Engineering, vol. 11, no. 5, Oct. 2025, pp. 1420-38, doi:10.14744/thermal.0000984.
Vancouver
1.Srinivas Mallimoggala, K Rama Devi. Advanced thermal management in aircraft lithium-ion battery packs: optimization of heat dissipation using heat spreaders and phase change materials. Journal of Thermal Engineering. 2025 Oct. 1;11(5):1420-38. doi:10.14744/thermal.0000984

IMPORTANT NOTE: JOURNAL SUBMISSION LINK http://eds.yildiz.edu.tr/journal-of-thermal-engineering