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◆ Materials (Basel, Switzerland)2026-08-31

AlSi10Mg Heat Sinks for Passive Cooling: Convective-Radiative Performance of Finned and Triply Periodic Minimal Surface Designs via Laser Powder Bed Fusion.

Josef Thomas Hollaman, Adil Saeed, Zulfiqar Ahmad Khan, Thomas Singleton

原始摘要(英文原文)· Original abstract
Increasing power densities in electronic systems require efficient passive thermal-management solutions. This study numerically compares five DMLS-compatible AlSi10Mg heat-sink architectures: perforated planar-fin, curved radial-fin, Schwarz P, BCC diamond and gyroid designs. Conjugate heat-transfer simulations incorporating conduction, natural convection and surface radiation were performed under an identical 18 W thermal load. Performance was evaluated using surface temperature, thermal resistance, temperature uniformity and convective-radiative heat dissipation. The gyroid achieved the lowest average surface temperature (82.02 °C) and combined thermal resistance (3.30 °C W-1), whereas the BCC diamond provided the greatest temperature uniformity (UI = 0.035). Radiation contributed 46-73% of total heat dissipation and was highest for the gyroid architecture. The results demonstrate that increased surface area alone does not ensure improved passive cooling; thermal performance depends on the coupled effects of topology, airflow accessibility and radiative heat exchange. Gyroid TPMS architectures therefore provide a promising DMLS-compatible approach for passive thermal management.
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AlSi10Mg Heat Sinks for Passive Cooling: Convective-Radiative Performance of Finned and Triply Periodic Minimal Surface Designs via Laser Powder Bed Fusion. — 科研速览 Science Skim