首页> 外文期刊>International Journal of Heat and Mass Transfer >Fluid flow and heat transfer characteristics of low temperature two-phase micro-channel heat sinks - Part 1: Experimental methods and flow visualization results
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Fluid flow and heat transfer characteristics of low temperature two-phase micro-channel heat sinks - Part 1: Experimental methods and flow visualization results

机译:低温两相微通道散热器的流体流动和传热特性-第1部分:实验方法和流动可视化结果

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摘要

A new cooling scheme is proposed where the primary working fluid flowing through a micro-channel heat sink is pre-cooled to low temperature using an indirect refrigeration cooling system. Cooling performance was explored using HFE 7100 as working fluid and four different micro-channel sizes. High-speed video imaging was employed to help explain the complex interrelated influences of hydraulic diameter, micro-channel width, mass velocity and subcooling on cooling performance. Unlike most prior two-phase micro-channel heat sink studies, which involved annular film evaporation due high void fraction, the low coolant temperatures used in this study produced subcooled flow boiling conditions. Decreasing coolant temperature delayed the onset of boiling, reduced bubble size and coalescence effects, and enhanced CHF. Heat fluxes in excess of 700 W/cm~2 could be managed without burnout. Premature CHF occurred at low mass velocities and was caused by vapor flow reversal toward the inlet plenum. This form of CHF was eliminated by decreasing coolant temperature and/or increasing flow rate.
机译:提出了一种新的冷却方案,其中使用间接制冷冷却系统将流过微通道散热器的主要工作流体预冷却至低温。使用HFE 7100作为工作流体和四种不同的微通道尺寸来探索冷却性能。高速视频成像被用来帮助解释液压直径,微通道宽度,质量速度和过冷对冷却性能的复杂的相互影响。与大多数先前的两相微通道散热器研究不同,该研究涉及由于高空隙率而导致的环形薄膜蒸发,而本研究中使用的低冷却液温度则产生了过冷的流动沸腾条件。冷却液温度的降低延迟了沸腾的开始,减小了气泡的大小和聚结效果,并提高了CHF。可以控制超过700 W / cm〜2的热通量而不会烧坏。 CHF过早发生在低质量速度下,是由蒸汽流向进气室的逆流引起的。通过降低冷却液温度和/或增加流速来消除这种形式的CHF。

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