Utilizing Additive Manufacturing to Enhance Two-Phase Heat Transfer Devices

Steffan Winkelhorst, D. Jafari, W. Wits
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Abstract

Two-phase heat transfer devices are among the most popular devices in thermal management systems due to their superior thermal characteristics. This paper investigates a thermosyphon for electronics cooling applications into which a freeform wick structure is inserted to enhance thermal performance. Additive manufacturing is employed to fabricate the wick structure tailored to the thermosyphon at hand using a conductive thermoplastic material. The goal of this study is to investigate how the freeform wick structure inserted into a thermosyphon affects the local liquid and vapor distributions and thus improving the thermal performance. Experiments were carried out with various heat loads and inclination angles, while the temperature distribution was recorded along the length of the thermosyphon. Thermal resistances were determined for both a conventional thermosyphon and an adapted version with an inserted wick structure in order to quantify the enhancement. The obtained experimental data demonstrate that the additively manufactured wick structure gives benefits at higher heat loads due to enhanced evaporation and boiling modes. The evaporation thermal resistance improves by 7% to 13% at heat loads above 55 W for the vertical orientation. Likewise, an improvement of about 7% to 9% was found at a heat load of 105 W for inclination angles of 30° and 60°. Both results exemplify the advantages additive manufacturing may bring to thermal management systems and in particular to two-phase heat transfer devices.
利用增材制造增强两相传热装置
由于其优越的热特性,两相传热装置是热管理系统中最受欢迎的设备之一。本文研究了一种用于电子冷却应用的热虹吸管,其中插入了自由形状的灯芯结构以提高热性能。使用导电热塑性材料,采用增材制造来制造适合手头热虹吸管的灯芯结构。本研究的目的是研究插入热虹吸管的自由形状灯芯结构如何影响局部液体和蒸汽分布,从而改善热性能。实验采用了不同的热负荷和倾角,记录了温度沿热虹吸管长度的分布。为了量化增强效果,对传统热虹吸管和带有插入灯芯结构的改进型热虹吸管进行了热阻测定。得到的实验数据表明,增材制造的灯芯结构在更高的热负荷下具有优势,因为它增强了蒸发和沸腾模式。当热负荷高于55w时,垂直方向的蒸发热阻提高了7% ~ 13%。同样,当倾角为30°和60°时,热负荷为105 W时,性能提高了7%至9%。这两个结果都说明了增材制造可能给热管理系统,特别是两相传热装置带来的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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