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Analysis of loop heat pipe operation with radiators of different orientation

机译:不同取向散热器的环热管操作分析

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A performance analysis model is presented to investigate operability of a loop heat pipe (LHP) with two differently oriented radiators. Analytical modelling has been made under particular conditions that the LHP of concern is used to reject waste heat generated by thermoelectrical cooling devices. The model is expressed in comparative dimensionless form normalized by specified design parameter values, thus permitting off- design state predictions of an LHP with one evaporator and two condensers. Condidered in that model are Peltier cooling power consumption holding most of the heat load, coupled radiator sink temperatures, a conductive loss and bubble generation in the evaporator wick, an extent of the condenser two-phase region length, a degree of the liquid subcooling, a change of the radiative conductance, a capillary pump head increase/decrease compensating a total pressure loss change, and a hydraulic balance between the condensers arranged in a row. Performance calculations of a modeled LHP have then been done with the sink temperatures as main variables and the mission equipment temperature as an operational parameter. Numerical results are graphically shown in the figures to readily find the heat rejection rate, the cooling coeffiencient of performance, the baseplate/reservoir/radiators temperatures, the subcoolness degree, the capillary/reservoir pressure changes, the capillary pump efficiency, the evaporator temperature effectiveness, the loop axial conductance, and the two-phase factor ratio representing a workability. Some of them are also compared with experimental ones obtained in ground testing to plainly demonstrate availability of the model.
机译:提出了一种性能分析模型,以研究与两个不同取向辐射器的环路热管(LHP)的可操作性。在特定条件下已经进行了分析建模,即LHP的LHP用于抑制热电冷却装置产生的废热。该模型在由指定的设计参数值归一化的比较无量纲形式表示,因此允许在LHP的摘设计状态预测的结果与一个蒸发器和两个冷凝器。在该模型中融合在珀耳帖冷却功耗中,持有大部分热负荷,耦合散热器沉降温度,蒸发器芯中的导电损耗和气泡产生,冷凝器两相区域长度,液体过冷的程度,液体过冷,辐射电导的变化,毛细管泵头增加/减少补偿总压力损失变化,并且在排列排列的冷凝器之间的液压平衡。然后,使用沉降温度作为主要变量和任务设备温度作为操作参数进行建模的LHP的性能计算。图形上的数值结果在图中示出,以容易地找到散热速率,性能的冷却系数,底板/储存器/散热器温度,毛细管度,毛细管/储层压力变化,毛细管泵效率,蒸发器温度效果,环轴传导,以及表示可加工性的两相因子比。其中一些也与在地面测试中获得的实验结果进行比较,以清楚地证明模型的可用性。

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