Effects of orientation with respect to gravity for a wire-plate convergent angle electrohydrodynamic gas pump

A. Lipchitz, G. Harvel
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Abstract

Electrohydrodynamic (EHD) phenomena have been shown to enhance heat transfer in a variety of heat transport designs including capillary pumped loops for extraterrestrial nuclear applications. Previously, EHD enhancement has been shown to improve the heat transport of experimental CPLs. Further enhancement with the addition of EHD gas pumps to the vapour phase requires EHD gas pump phenomena and performance to be characterized with respect to gravity to determine the expected enhancement from this arrangement in zero and microgravity environments. In this paper an EHD gas pump is oriented with gravity (inverted), 90° to gravity (horizontal) and against gravity (vertical) to determine the effect gravitational and buoyancy forces have on the flow and heat transport of EHD gas pumps. The flow and temperature profiles of the pump at the outlet are presented to demonstrate the orientation effect gravity and buoyancy imposes on EHD gas pumps. The EHD number is calculated and presented. The paper determines that there is a noticeable orientation effect at lower applied voltages due to the heating effects causing recirculation in the flow being reduced with the aid of buoyancy forces. However, the effect is less noticeable at higher applied voltages due to the stronger EHD forces.
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线板会聚角电液动力气泵方向对重力的影响
电流体动力学(EHD)现象已被证明可以在各种热传输设计中增强传热,包括用于地外核应用的毛细管泵循环。先前,EHD增强已被证明可以改善实验cpl的热传输。在气相中增加EHD气泵的进一步增强需要对EHD气泵的现象和性能进行重力特征分析,以确定这种布置在零重力和微重力环境下的预期增强效果。本文采用重力导向(倒置)、与重力成90°(水平)和反重力导向(垂直)的方法,确定重力和浮力对EHD气泵流动和传热的影响。给出了泵出口处的流量和温度分布,以说明重力和浮力对EHD气泵的定向效应。计算并给出了EHD数。本文确定,在较低的施加电压下,由于在浮力的帮助下减少了流动中引起再循环的加热效应,因此存在明显的定向效应。然而,由于较强的EHD力,在较高的施加电压下,效果不太明显。
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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