Experimental investigation and simulation of thermal and electrical performance of laser welded aluminium-based busbars for electric vehicle batteries

Laser-welded aluminium busbars must sustain high currents while limiting resistive heating in electric vehicle battery packs. This study combines oil-cooled direct-current pulse tests at ambient temperatures of -10 °C, 10 °C, 30 °C, 50 °C and 70 °C and currents of 100 A, 300 A, 500 A and 700 A with three-dimensional COMSOL Multiphysics electro-thermal simulations. Mean joint resistance during the first 60 s ranged from 12.05 µΩ to 17.29 µΩ and increased with current and ambient temperature. At 700 A, peak weld temperature increased from 8.59 °C at an ambient temperature of -10 °C to 84.24 °C at an ambient temperature of 70 °C, corresponding to a measured temperature rise of 13.25 °C. This result demonstrates thermal stacking, while the similar temperature rises at 700 A across the experimental ambient temperatures do not establish a monotonic relationship between temperature rise and ambient temperature. Across the 20 shared experimental and simulated conditions, the mean absolute error in weld temperature was 3.82 °C. The model reproduced the nonlinear current trend but overpredicted temperatures at high currents. The results provide a basis for defining operating limits, cooling strategies, and resistance- or temperature-based weld monitoring.

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Publication Details

Journal
Journal of Energy Storage
Published
2026-09-28
DOI
https://doi.org/10.1016/j.est.2026.124821
Primary Topic
Advanced Battery Technologies Research
Type
article
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article

Experimental investigation and simulation of thermal and electrical performance of laser welded aluminium-based busbars for electric vehicle batteries

Tanveerkhan S. Pathan, Andrew D. Moore, Mahyar J. Koshkouei, Mona Faraji Niri et al.
Journal of Energy Storage
Advanced Battery Technologies Research
article

Experimental investigation and simulation of thermal and electrical performance of laser welded aluminium-based busbars for electric vehicle batteries

Tanveerkhan S. Pathan, Andrew D. Moore, Mahyar J. Koshkouei, Mona Faraji Niri, Thomas R. B. Grandjean, M. Chelladurai Asirvatham, Manlio Valerio Morganti
article en

Abstract

Laser-welded aluminium busbars must sustain high currents while limiting resistive heating in electric vehicle battery packs. This study combines oil-cooled direct-current pulse tests at ambient temperatures of -10 °C, 10 °C, 30 °C, 50 °C and 70 °C and currents of 100 A, 300 A, 500 A and 700 A with three-dimensional COMSOL Multiphysics electro-thermal simulations. Mean joint resistance during the first 60 s ranged from 12.05 µΩ to 17.29 µΩ and increased with current and ambient temperature. At 700 A, peak weld temperature increased from 8.59 °C at an ambient temperature of -10 °C to 84.24 °C at an ambient temperature of 70 °C, corresponding to a measured temperature rise of 13.25 °C. This result demonstrates thermal stacking, while the similar temperature rises at 700 A across the experimental ambient temperatures do not establish a monotonic relationship between temperature rise and ambient temperature. Across the 20 shared experimental and simulated conditions, the mean absolute error in weld temperature was 3.82 °C. The model reproduced the nonlinear current trend but overpredicted temperatures at high currents. The results provide a basis for defining operating limits, cooling strategies, and resistance- or temperature-based weld monitoring.

Journal of Energy StorageVol. 182
Jaguar Land Rover (United Kingdom) (GB), University of Warwick (GB)
Openalex Percentile: Top 20%
Advanced Battery Technologies Research
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Experimental investigation and simulation of thermal and electrical performance of laser welded aluminium-based busbars for electric vehicle batteries — Tanveerkhan S. Pathan, Andrew D. Moore, et al. · Journal of Energy Storage (2026) | TGRS Research Map | TGRS