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Effects of geometric design on thermal performance of star-groove micro-heat pipes

机译:几何设计对星形槽微热管热性能的影响

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摘要

This work is aimed to study the effects of geometric design on the thermal performance of star-groove micro-heat pipes. A mathematical one-dimensional, steady-state model is developed from the first principles where the continuity, momentum, and energy equations of the liquid and vapor phases, together with the Young-Laplace equation, are solved numerically to yield the heat and fluid flow characteristics of the micro-heat pipe. The heat transport capacity and the corresponding optimal charge level of the working fluid are evaluated for different geometric designs and operating conditions. The unique geometrical design of the star-groove micro-heat pipes provides a better insight into the effects of various geometrical parameters, such as the cross-sectional shape, the acuteness of the corner apex angle, the number of corners, cross-sectional area and total length. Comparisons of the performance between the star-groove and regular polygonal micro-heat pipes are performed and the factors contributing to the enhancement of heat transport due to the variations of geometrical parameters are identified and discussed.
机译:这项工作旨在研究几何设计对星形凹槽微型热管热性能的影响。从最初的原理建立了数学的一维稳态模型,其中,液相和气相的连续性,动量和能量方程以及Young-Laplace方程被数值求解,以产生热量和流体流量微型热管的特性。针对不同的几何设计和运行条件,评估了工作流体的传热能力和相应的最佳装料水平。星形凹槽微型热管的独特几何设计可更好地洞察各种几何参数的影响,例如横截面形状,角顶角的锐度,角的数量,横截面积和总长度。比较了星形凹槽和规则多边形微热管的性能,并确定和讨论了由于几何参数的变化而导致热传递增强的因素。

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