Topology-optimized microchannel cooling for heterogeneous logic-HBM heat sources: thermal-hydraulic optimization and thermo-mechanical assessment

Efficient cooling of heterogeneous 2.5D packages remains a critical challenge due to the spatially non-uniform heat generation and distinct thermal requirements of logic and High Bandwidth Memory (HBM) regions. However, existing microchannel heat sink (MCHS) studies predominantly focus on thermal-hydraulic enhancement under nominal operating conditions, leaving the combined effects of non-uniform logic-HBM heat loads, operating-condition variations, inter-die temperature differences, and thermally induced stress insufficiently addressed. To bridge this gap, a density-based thermo-fluid topology optimization is performed for the MCHS of a heterogeneous logic-HBM system. The optimized 2D layouts are reconstructed into three-dimensional (3D) microchannel heat sinks and systematically evaluated by CFD and thermo-mechanical simulations under different operating conditions. Results indicate that the inlet/outlet arrangement mainly dictates the primary flow path, whereas secondary branches shorten solid-conduction paths to suppress local hotspots. Compared with the straight microchannel baseline, the optimized layouts reduce maximum thermal resistance by ∼30%, cut pumping power by 57%. Further evaluations under varying flow conditions and logic power ratios confirm that the topology-optimized layouts retain their cooling advantages beyond the nominal design point. Crucially, the post-optimization thermo-mechanical evaluation of the MCHS reveals a 70% reduction in maximum thermally induced von Mises stress (from 35.59 to 10.75 MPa). These results demonstrate that topology optimization provides an effective strategy for enhancing the thermo-hydraulic performance, while inherently mitigating thermally induced stress within the MCHS.

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Publication Details

Journal
Applied Thermal Engineering
Published
2026-10-07
DOI
https://doi.org/10.1016/j.applthermaleng.2026.133538
Primary Topic
Heat Transfer and Optimization
Type
article
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article

Topology-optimized microchannel cooling for heterogeneous logic-HBM heat sources: thermal-hydraulic optimization and thermo-mechanical assessment

Boxiang Wang, Meihong Zhao, Shuai Gong, Siping Gao
Applied Thermal Engineering
Heat Transfer and Optimization
article

Topology-optimized microchannel cooling for heterogeneous logic-HBM heat sources: thermal-hydraulic optimization and thermo-mechanical assessment

Boxiang Wang, Meihong Zhao, Shuai Gong, Siping Gao
article en

Abstract

Efficient cooling of heterogeneous 2.5D packages remains a critical challenge due to the spatially non-uniform heat generation and distinct thermal requirements of logic and High Bandwidth Memory (HBM) regions. However, existing microchannel heat sink (MCHS) studies predominantly focus on thermal-hydraulic enhancement under nominal operating conditions, leaving the combined effects of non-uniform logic-HBM heat loads, operating-condition variations, inter-die temperature differences, and thermally induced stress insufficiently addressed. To bridge this gap, a density-based thermo-fluid topology optimization is performed for the MCHS of a heterogeneous logic-HBM system. The optimized 2D layouts are reconstructed into three-dimensional (3D) microchannel heat sinks and systematically evaluated by CFD and thermo-mechanical simulations under different operating conditions. Results indicate that the inlet/outlet arrangement mainly dictates the primary flow path, whereas secondary branches shorten solid-conduction paths to suppress local hotspots. Compared with the straight microchannel baseline, the optimized layouts reduce maximum thermal resistance by ∼30%, cut pumping power by 57%. Further evaluations under varying flow conditions and logic power ratios confirm that the topology-optimized layouts retain their cooling advantages beyond the nominal design point. Crucially, the post-optimization thermo-mechanical evaluation of the MCHS reveals a 70% reduction in maximum thermally induced von Mises stress (from 35.59 to 10.75 MPa). These results demonstrate that topology optimization provides an effective strategy for enhancing the thermo-hydraulic performance, while inherently mitigating thermally induced stress within the MCHS.

Applied Thermal EngineeringVol. 308
Shanghai Jiao Tong University (CN), Chinese Academy of Sciences (CN), Shanghai Institute of Microsystem and Information Technology (CN)
Openalex Percentile: Top 21%
Heat Transfer and Optimization
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