计算机冷却
拓扑优化
拓扑(电路)
机械工程
传热
热的
电池(电)
材料科学
电子设备和系统的热管理
储能
水冷
可扩展性
热能储存
网络拓扑
消散
雷诺数
优化设计
计算机科学
电子设备冷却
热能
冷却液
高效能源利用
被动冷却
工程类
机械
强化传热
发热
计算流体力学
电池组
作者
Xiang-Wei Lin,Menglin Yu,Xin-Yi Lin,Zhi-Jun Li,Zhi-Fu Zhou,Liejin Guo
标识
DOI:10.1016/j.enconman.2026.121268
摘要
Traditional designs of liquid cooling plates using single thermally conductive material are either constrained by predefined topologies or fail to adequately mitigate hotspot issues, which remain insufficient for design freedom and performance trade-offs. To overcome these limitations, we propose a density-based topology optimization model that simultaneously optimizes the layout of flow channels and spatial distribution of two thermally conductive solids—enabling functional structures tailored to poorly ventilated areas. The tri-material liquid cooling plate integrates conjugate heat transfer modeling with a multi-physics battery model to accurately capture the electrochemical-thermal-hydrodynamic interaction in 46.59 kWh battery module. The optimized design yields bifurcated flow patterns that reduce fluid energy dissipation by up to 19.5 and 12.6 %, respectively, compared to straight-channel and single-solid designs at Reynolds number of 900, while improving thermal diffusion performance by over 10 % in terms of performance evaluation criterion. The comparative analysis further reveals that side-mounted composite cold plate outperforms the bottom-mounted counterpart under high discharge rates of 0.5–1C, achieving comprehensive evaluation improvements of 0.09–0.12 due to shorter heat transfer paths and increased thermal contact areas. These results demonstrate that tri-material topology optimization enables co-design of structure and material distribution, offering a scalable solution for high-efficiency and cost-effective liquid cooling design in energy storage systems.
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