材料科学
热的
传热
热流密度
螺旋(铁路)
频道(广播)
机械
常量(计算机编程)
热阻
时间常数
热力学
传热系数
热管
核工程
计算机冷却
热效率
热分析
散热片
热导率
强化传热
热透过率
复合材料
热传导
机械工程
纵横比(航空)
作者
Chuan Luo,Ze Wang,Zhengang Zhao
摘要
Abstract With the widespread application of high heat-flux electronics, vapor chambers(VC) need to possess enhanced thermal performance. To this end, a novel VC with embedded spiral liquid-cooled channels (VC-ELCC) is proposed, thereby ensuring excellent temperature uniformity while improving cooling efficiency and thermal response speed. We developed a numerical model of the VC-ELCC to analyze the heat transfer under different structural dimensions and varying heat fluxes. Based on the simulation results, a VC-ELCC with a chamber height of 3 mm and a spiral channel aspect ratio of 5:6 was designed. Finally, we fabricated a VC-ELCC prototype with identical dimensions and validated its thermal performance on an established platform. The results demonstrate that, compared to a vapor chamber with non-embedded liquid-cooled channels (VC-NLCC), the VC-ELCC effectively reduces thermal resistance, improves temperature uniformity, and shortens the thermal response time. The experimental results agree well with the simulations. Under three heat flux conditions of 56 kW/m2, 83 kW/m2, and 100 kW/m2, the thermal response time constant were 3.4 s, 4.25 s, and 4.5 s, respectively—reducing response times by 41.3%, 29.2%, and 28.6% compared to VC-NLCC. These findings highlight the potential of this integrated design for thermal management.
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