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On the Scalability of Liquid Microjet Array Impingement Cooling for Large Area Systems

机译:大面积系统液体微喷射阵列冲击冷却的可扩展性

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The necessity for an efficient thermal management system covering large areas is growing rapidly with the push toward more electric systems. A significant amount of research over the past 2 decades has conclusively proved the suitability of jet, droplet, or spray impingement for high heat flux cooling. However, all these research consider small heat source areas, typically about a few cm2. Can a large array of impingement pattern, covering a much wider area, achieve similar heat flux levels? This article presents liquid microjet array impingement cooling of a heat source that is about two orders of magnitude larger than studied in the previous works. Experiments are carried out with 441 jets of de-ionized water and a dielectric liquid HFE7200, each 200 μm diameter. The jets impinge on a 189 cm~2 area surface, in free surface and confined jet configurations. The average heat transfer coefficient values of the present experiment are compared with correlations from the literature. While some correlations show excellent agreement, others deviate significantly. The ensuing discussion suggests that the post-impingement liquid dynamics, particularly the collision between the liquid fronts on the surface created from surrounding jets, is the most important criterion dictating the average heat transfer coefficient. Thus, similar thermal performance can be achieved, irrespective of the length scale, as long as the flow dynamics are similar. These results prove the scalability of the liquid microjet array impingement technique for cooling a few cm2 area to a few hundred cm~2 area.
机译:随着向更多电气系统的推动,有效的热管理系统覆盖大面积区域的必要性正在迅速增长。在过去的20年中,大量的研究最终证明了射流,液滴或喷雾撞击对于高热通量冷却的适用性。但是,所有这些研究都考虑到较小的热源区域,通常约为几平方厘米。覆盖更广区域的大量撞击模式能否达到相似的热通量水平?本文介绍了一种热源的液体微喷射阵列冲击冷却技术,该技术比以前的研究大了两个数量级。用441个去离子水和电介质液体HFE7200进行喷射,每个直径200μm。射流以自由表面和受限射流配置撞击在面积为189 cm〜2的表面上。将本实验的平均传热系数值与文献中的相关性进行比较。尽管某些相关性显示出极好的一致性,但其他相关性却有明显的偏离。随后的讨论表明,撞击后的液体动力学,尤其是周围喷流在表面上形成的液体前沿之间的碰撞,是决定平均传热系数的最重要标准。因此,只要流动动力学是相似的,就可以与长度尺度无关地实现相似的热性能。这些结果证明了将液体微喷射阵列撞击技术从几平方厘米的面积冷却到几百平方厘米〜2面积的可扩展性。

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