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Topology optimization of microchannel heat sinks for non-uniform integrated chip systems

  • Junjie Wei
  • , Xujun Xu
  • , Zhangchi Zhao
  • , Yating Pan
  • , Nanjing Hao
  • , Bingxian Ou
  • , Minqi Zhu
  • , Yanlei Wang
  • , Hongyan He
  • , Zhen Li
  • , Ning Wei
  • Jiangnan University
  • Jiangsu Special Equipment Safety Supervision and Inspection Institute
  • China Electronics Technology Group Corporation
  • Renmin University of China
  • CAS - Institute of Process Engineering

科研成果: 期刊稿件文章同行评审

10 引用 (Scopus)

摘要

The continuous miniaturization and integration of microelectronic devices have posed severe thermal management challenges, particularly under non-uniform heat flux distributions arising from heterogeneous chip systems. To address this issue, we propose a novel microchannel heat sink inspired by a biomimetic lung-like structure. Through density-based topology optimization and 3D conjugate heat transfer modeling within computational fluid dynamics (CFD) simulations, the proposed design effectively reduces the average temperature and flow resistance across varying objective weights and fluid volume fractions. An area-weighted coefficient of variation for heat flux (CVw) was developed to evaluation over a wide range of heat flux conditions, from nearly uniform (CVw = 0.049) to highly heterogeneous (CVw = 0.983). Simulation results reveal that the topology-optimized microchannel (TOMC) heat sink achieves optimal flow-thermal synergy at moderate structural complexity. Specifically, over the CVw range of 0.049–0.983, the TOMC reduces the temperature variance by 68.3 %–80.7 % compared with the straight microchannel (SMC) heat sink. Under a typical non-uniform thermal load (CVw = 0.297), the TOMC exhibits a 123.3 % improvement in Nusselt number and a 15.6 % decrease in pressure drop. These findings underscore the potential of the bio-inspired topology optimization framework as an effective solution for thermal regulation in next-generation heterogeneous electronic systems.

源语言英语
期刊论文编号110046
期刊International Communications in Heat and Mass Transfer
171
DOI
出版状态已出版 - 2月 2026

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