Additive Manufacturing of Liquid-cooled Ceramic Heat Sinks: An Experimental and Numerical Study

Haoyuan Wang , Kehui Hu , Ming Cheng , Zhigang Lu
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Abstract

With recent advances in power electronic packaging technologies, liquid-cooled ceramic heat sinks have been considered as a promising solution for further improving the performance of power electronic devices. In this study, several aluminum oxide heat sinks were fabricated and tested using the digital light processing-based additive manufacturing method, to verify their practical performance. The results showed that the complex cooling structures inside the heat sinks can be completely formed and exhibited high surface quality. The experimental thermal and hydraulic performances of the heat sinks were consistent with the numerically modeled predictions. Furthermore, by exploiting the advantages of additive manufacturing, a direct manifold microchannel (MMC) configuration was designed to reduce the vertical flow of the traditional MMC configuration and achieve an improved cooling efficiency. At a constant volumetric flow rate of 1 L/min, the direct MMC configuration achieved a 19.8% reduction in pressure drop and an 11.8% reduction in thermal resistance, as well as a more uniform temperature distribution.

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液冷陶瓷散热器的增材制造:实验与数值研究
随着电力电子封装技术的进步,液冷陶瓷散热器被认为是进一步提高电力电子器件性能的一种有前途的解决方案。在本研究中,采用基于数字光处理的增材制造方法制备并测试了几种氧化铝散热器,以验证其实际性能。结果表明,该方法可以完整地形成散热器内部复杂的冷却结构,并具有较高的表面质量。热沉的实验热性能和水力性能与数值模拟的预测结果一致。此外,利用增材制造的优势,设计了一种直接流形微通道(MMC)结构,以减少传统MMC结构的垂直流动,提高冷却效率。当体积流量为1 L/min时,直接MMC配置的压降降低了19.8%,热阻降低了11.8%,温度分布更加均匀。
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