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Numerical Study of Thermal Performance of a Capillary Evaporator in a Loop Heat Pipe with Liquid-Saturated Wick

机译:液体饱和棉芯回路热管中毛细管蒸发器热性能的数值研究

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摘要

Heat transfer of a capillary evaporator in a loop heat pipe was analyzed through 3D numerical simulations to study the effects of the thermal conductivity of the wick, the contact area between the casing and the wick, and the subcooling in the compensation chamber (CC) on the thermal performance of the evaporator. A pore network model with a distribution of pore radii was used to simulate liquid flow in the porous structure of the wick. To obtain high accuracy, fine meshes were used at the boundaries among the casing, the wick, and the grooves. Distributions of temperature, pressure, and mass flow rate were compared for polytetra-fluoroethylene (PTFE) and stainless steel wicks. The thermal conductivity of the wick and the contact area between the casing and the wick significantly impacted thermal performance of the evaporator heat-transfer coefficient and the heat leak to the CC. The 3D analysis provided highly accurate values for the heat leak; in some cases, the heat leaks of PTFE and stainless steel wicks showed little differences. In general, the heat flux is concentrated at the boundaries between the casing, the wick, and the grooves; therefore, thermal performance can be optimized by increasing the length of the boundary.
机译:通过3D数值模拟分析了回路热管中毛细管蒸发器的传热,以研究灯芯的导热系数,机壳与灯芯之间的接触面积以及补偿室(CC)中的过冷情况的影响。蒸发器的热性能。使用具有孔半径分布的孔网络模型来模拟液芯在多孔结构中的流动。为了获得较高的精度,在套管,油芯和凹槽之间的边界处使用了细密的网格。比较了聚四氟乙烯(PTFE)和不锈钢芯的温度,压力和质量流量的分布。灯芯的导热性以及壳体与灯芯之间的接触面积显着影响了蒸发器传热系数的热性能以及对CC的热泄漏。 3D分析提供了高度准确的热泄漏值;在某些情况下,PTFE和不锈钢芯的热泄漏差异不大。通常,热通量集中在壳体,灯芯和凹槽之间的边界处。因此,可以通过增加边界的长度来优化热性能。

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