Upstream Electrohydrodynamic Conduction Pumping for Flow Distribution Control of Parallel Microchannel Evaporators

0 ENGINEERING, MECHANICAL
Nathaniel J. O'connor, M. Talmor, J. Yagoobi
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引用次数: 0

Abstract

Flow boiling in mini and microchannels has become an attractive option for many applications, such as compact and low charge heat exchangers. Microchannel heat exchangers, however, are more susceptible to maldistribution between parallel flow channels. When operating during uneven heat load conditions, the maldistribution becomes even more severe. Electrohydrodynamic (EHD) conduction pumping technology offers an innovative way to redistribute flow between parallel branches in a microchannel heat exchanger and is also being explored as a next generation mechanism of microgravity heat transport. In EHD conduction pumping, a strong electric field interacts with dissociated electrolytes in dielectric fluid to generate a net body force, and thus, a net flow, with no moving parts, no acoustical noise, lower power consumption, and the ability to operate in microgravity. An EHD conduction pump was designed, fabricated, and tested for upstream flow distribution control of a parallel microchannel evaporator in an opposing configuration. Flow redistribution capability was measured at system flowrates up to 6 ml/min. The EHD conduction pump was capable of completely blocking and reversing the flow in its branch. Recovery from near critical heat flux conditions up to a maximum heat flux of 77.5 W/cm2 was also demonstrated for the operating conditions and design of this study. This was achieved in the absence of enhanced surfaces. The working fluid is HFE 7100. The results show that EHD conduction is able to effectively control the flow distribution of the microchannel evaporator, however, its effectiveness decreases with increasing heat flux and flowrate.
用于平行微通道蒸发器流量分布控制的上游电流体动力传导泵
微型和微通道中的流动沸腾已成为许多应用(如紧凑型和低充注热交换器)的一种极具吸引力的选择。然而,微通道热交换器更容易受到平行流道之间分布不良的影响。在热负荷不均匀的条件下运行时,分布不良的情况会变得更加严重。电流体动力(EHD)传导泵送技术为重新分配微通道热交换器中平行分支间的流量提供了一种创新方法,同时也正在被探索作为下一代微重力热传输机制。在 EHD 传导泵中,强电场与介电流体中离解的电解质相互作用,产生净体力,从而产生净流,没有运动部件,没有声学噪音,功耗更低,并且能够在微重力环境下运行。我们设计、制造并测试了一种 EHD 传导泵,用于控制对置配置的平行微通道蒸发器的上游流量分配。在系统流速高达 6 毫升/分钟时测量了流量再分配能力。EHD 传导泵能够完全阻断和逆转其分支中的流动。在本研究的操作条件和设计中,还演示了从接近临界热通量条件下恢复到 77.5 W/cm2 的最大热通量。这是在没有增强表面的情况下实现的。工作流体为 HFE 7100。结果表明,EHD 传导能够有效控制微通道蒸发器的流量分布,但其有效性会随着热通量和流速的增加而降低。
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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来源期刊
CiteScore
4.20
自引率
0.00%
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