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Capillary Evaporation in Microchanneled Polymer Films

机译:微通道聚合物薄膜中的毛细管蒸发

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The capillary-driven evaporation heat transfer and the resulting fluid flow mechanisms occurring in a microchanneled, flexible polymer microfilm were investigated to better understand the operation and improve the design process of two-phase flexible membrane heat pipe devices. Experimental tests were conducted to evaluate the capillary evaporation heat transfer limit in a polymer microfilm with 26-μm-wide capillary grooves. The experimental results indicated that the microchanneled polymer film could create a capillary force sufficient to function adequately when used with wettable working fluids such as methanol or ethanol. The maximum evaporation heat transport capacity was found to decrease significantly as the effective length of the polymer microfilm increased. In addition to the experimental portion of the investigation, an analytical model was developed to predict the capillary evaporation limitation. When this model was used, the effects of variations in the geometric parameters of the microgrooves on the evaporation heat transfer were analyzed. The results indicated that when the half-angle of the trapezoidal grooves was fixed, the maximum evaporation heat transfer rate increased with increases in the depth and decreases in the width of the grooves. Predictions obtained from the analytical model were then compared with the results of the experimental investigation and indicated good agreement.
机译:研究了毛细管驱动的蒸发传热以及在微通道柔性聚合物微膜中发生的流体流动机理,以更好地了解两相柔性膜热管装置的操作并改进设计过程。进行实验测试以评估具有26μm宽毛细管槽的聚合物微膜中的毛细管蒸发传热极限。实验结果表明,当与可湿性工作液(例如甲醇或乙醇)一起使用时,微通道聚合物膜可产生足以充分发挥作用的毛细作用力。发现最大蒸发热传递容量随着聚合物微膜的有效长度的增加而显着降低。除了研究的实验部分之外,还开发了一种分析模型来预测毛细​​管蒸发限制。当使用该模型时,分析了微沟槽的几何参数变化对蒸发传热的影响。结果表明,当梯形凹槽的半角固定时,最大蒸发传热速率随凹槽深度的增加而增加,凹槽宽度的减小。然后将从分析模型获得的预测与实验研究的结果进行比较,并显示出良好的一致性。

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