散热器与阿兹特克启发径向几何

A. Perez-Hernandez, L. Luviano-Ortiz, A. Hernandez-Guerrero, Israel Botello-Arredondo
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引用次数: 0

摘要

芯片和微芯片功率的增加导致在非常小的区域内产生100 W/cm2量级的热通量[1],因此,消散这些热量已成为这些负极性正常工作的优先事项。因此,提出新的几何形状和耗散方法已成为科学研究的一个重要领域。本研究提出了一种新的几何形状的散热器能够耗散非常高的能量流通过液体冷却的分析。这些分析是基于先前对蛇形几何形状的分析,其中散逸的热通量为10 W/cm2[2]。分析了速度、压降、传热等工况。采用水作为耗散流体,入口速度为0.1 m/s。要分析的几何形状被称为“阿兹特克几何”,是一种辐射型几何形状,最初是为燃料电池设计的,它有三个径向条纹排列的小鳍。结果表明,该压降约为85 Pa,小于径向线圈微通道时的压降(100 ~ 870 Pa)。耗散的热量大于径向线圈微通道中的热量(205 W与145和194 W相比),证明所提出的径向几何形状比市场上先前提出的几何形状具有更大的耗散能力,成本更低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heat Dissipator With Aztec Inspired Radial Geometry
The increase in the power of chips and microchips has resulted in the generation of heat fluxes to be dissipated of the order of 100 W/cm2 in very small areas [1], therefore, dissipating this heat has become a priority for the proper functioning of these dispositives. Thus, the proposition of new geometries and dissipation methods has become an area of great interest in scientific research. This research presents the analysis of a new geometry for a heat sink capable of dissipating very high energy flows by means of liquid cooling. The analyzes are based on previous analyzes of serpentine type geometries, where the heat flux to dissipate was 10 W/cm2 [2]. The operating conditions, such as velocity and pressure drop, as well as heat transfer are analyzed. Water is used as the dissipation fluid at an inlet velocity of 0.1 m/s. The geometry to be analyzed, called “Aztec Geometry,” is a radial type geometry that was originally designed for fuel cells, and has small fins arranged in three radial stripes. The results indicate that the pressure drop is on the order of 85 Pa, which is less than the pressure drop when radial coil microchannels are used (between 100 and 870 Pa). The dissipated heat is larger than the heat dissipated in radial coil microchannels (205 W versus 145 and 194 W), proving that the proposed radial geometry has a greater dissipation capacity at a lower cost than previously proposed geometries in the market.
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