TY - JOUR
T1 - Cell to module level thermal management of batteries using partial and full coverage of multi-melting point flexible composite phase change materials
AU - Kumar, Mahesh
AU - Karim, Annas
AU - Khan, Sheher Yar
AU - Shen, Yongliang
AU - Ji, Wenjie
AU - Sohrabi, Arvin
AU - Haq, Muhammad Saad Ul
AU - Xu, Zhiqi
AU - Wang, Yihan
AU - Liu, Xianze
AU - Zhu, Xiaotong
AU - Liu, Shuli
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/9
Y1 - 2026/9
N2 - High-rate operation of cylindrical lithium-ion batteries causes excessive temperature rise and axial temperature non-uniformity, compromising safety and cycle life. Although phase-change materials (PCMs) suppress peak temperature, most strategies rely on full battery coverage or bulky external structures, increasing material usage and system mass, which is undesirable for weight-sensitive applications and may reduce pack-level gravimetric energy density. Furthermore, mismatch between the PCM melting temperature and desired battery operating window limits latent-heat utilization. This study proposes a material-efficient strategy from single cell to module level by comparing partial and full coverage using flexible composite PCM (FCPCM). Two FCPCMs with melting points of 35 °C (FCPCM-A) and 42 °C (FCPCM-B) are developed to assess the combined effects of melting-point selection and coverage configuration. Different coverage strategies are evaluated at various discharge rates, followed by cyclic testing at 30 °C with module-level validation. Partial coverage reduces peak temperature but relocates hotspots to uncovered regions, and single partial layer cannot keep temperatures within safe limits at high C-rates. While full coverage provides better cooling, the upper-middle (UM) partial-coverage configuration maintains safe temperatures range using ∼62% of the full-coverage FCPCM mass, corresponding to ∼38% FCPCM saving and ∼ 14.8% estimated module-level gravimetric energy-density improvement. UM coverage reduced peak temperature from 56.6 °C and 66.3 °C (bare cell) to below 45 °C at 3C and below 50 °C at 4C. During cycling, FCPCM-B showed more stable latent-heat buffering than FCPCM-A. Thus, melting-point-matched partial coverage saves material while maintaining safe peak temperature, though full coverage provides better temperature uniformity.
AB - High-rate operation of cylindrical lithium-ion batteries causes excessive temperature rise and axial temperature non-uniformity, compromising safety and cycle life. Although phase-change materials (PCMs) suppress peak temperature, most strategies rely on full battery coverage or bulky external structures, increasing material usage and system mass, which is undesirable for weight-sensitive applications and may reduce pack-level gravimetric energy density. Furthermore, mismatch between the PCM melting temperature and desired battery operating window limits latent-heat utilization. This study proposes a material-efficient strategy from single cell to module level by comparing partial and full coverage using flexible composite PCM (FCPCM). Two FCPCMs with melting points of 35 °C (FCPCM-A) and 42 °C (FCPCM-B) are developed to assess the combined effects of melting-point selection and coverage configuration. Different coverage strategies are evaluated at various discharge rates, followed by cyclic testing at 30 °C with module-level validation. Partial coverage reduces peak temperature but relocates hotspots to uncovered regions, and single partial layer cannot keep temperatures within safe limits at high C-rates. While full coverage provides better cooling, the upper-middle (UM) partial-coverage configuration maintains safe temperatures range using ∼62% of the full-coverage FCPCM mass, corresponding to ∼38% FCPCM saving and ∼ 14.8% estimated module-level gravimetric energy-density improvement. UM coverage reduced peak temperature from 56.6 °C and 66.3 °C (bare cell) to below 45 °C at 3C and below 50 °C at 4C. During cycling, FCPCM-B showed more stable latent-heat buffering than FCPCM-A. Thus, melting-point-matched partial coverage saves material while maintaining safe peak temperature, though full coverage provides better temperature uniformity.
KW - Battery thermal management
KW - Flexible composite phase change material
KW - Lithium-ion batteries
KW - Temperature uniformity
UR - https://www.scopus.com/pages/publications/105043791034
U2 - 10.1016/j.icheatmasstransfer.2026.111941
DO - 10.1016/j.icheatmasstransfer.2026.111941
M3 - Article
AN - SCOPUS:105043791034
SN - 0735-1933
VL - 178
JO - International Communications in Heat and Mass Transfer
JF - International Communications in Heat and Mass Transfer
IS - P5
M1 - 111941
ER -