电液动力传导泵静压产生的预测

S. R. Mahmoudi, K. Adamiak, G. Castle
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引用次数: 7

摘要

对稳态二维电流体抽运双极异电荷传导现象进行了数值研究。为了验证所提出的数值算法,选择泵的几何形状与文献中实验数据可用的设备相同。计算了泵的正负离子浓度和电场分布。在2 ~ 20kV直流电压范围内,对制冷剂R-123施加不同电压时泵产生的静压进行了预测。在不存在流体流动的情况下,预测的静压产生与以往的实验结果吻合较好,在20 kV电压下最大偏差为12.5%。在本工作中,假设R-123的电导率为最近提出的σ=7×10−11 S/m。假设此电导率值,该数值模型预测了即使在低外加电压和弱场情况下,也能按间隙间距的顺序得到电荷层厚度。通过增加施加电压,高于~ 15kV,相反电极的异电荷层扩展到整个间隙间距,并形成重叠区域。假设以往数值研究中R-123的电导率值高出3个数量级,则电荷层厚度和压力产生被低估了近2个数量级。通过大量的数值实验,发现工作流体的电导率是决定异质电荷层厚度、电体力和预测静压的重要参数。讨论了当异电荷层在减小的间隙中产生重叠区域时,与传导泵的缩放有关的问题。
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Prediction of the static pressure generation for an electrohydrodynamic conduction pump
Steady-state 2-D electrohydrodynamic pumping through bipolar hetero-charge conduction phenomenon has been investigated numerically. In order to validate the presented numerical algorithm, the pump geometry was chosen to be identical to the device whose experimental data is available in the literature. The concentrations of the positive and negative ions and the electric field distribution of the pump were calculated. The resulting static pressure generation of the pump was predicted for the refrigerant R-123 at different applied voltages ranging between 2 to 20kV DC. The comparison between the predicted static pressure generation and the previous experimental results in the absence of fluid flow shows a good agreement with a maximum deviation of 12.5% at 20 kV applied voltage. In the present work, the electrical conductivity of R-123 was assumed to be the most recent proposed value of σ=7×10−11 S/m. Assuming this value of electrical conductivity, the numerical model predicts the hetrocharge layer thicknesses in the order of gap spacing even at low applied voltage and weak field regime. By increasing the applied voltage, above ∼15kV, the heterocharge layers of the opposite electrodes extend to the entire gap spacing and create an overlapping region. Assuming three orders of magnitude higher value of electrical conductivity for R-123 in the previous numerical studies, the thickness of the hetrocharge layer and pressure generation was underestimated by almost two orders of magnitude. Through extensive numerical experiments, the electrical conductivity of the working fluid was found to be an important parameter to determine the heterocharge layer thickness, electric body force, and predicted static pressure. The issues related to the scaling of the conduction pump when the heterocharge layers create an overlapping region in the reduced gap spacing are discussed.
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