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Experimental investigation on performances and characteristics of nitrogen-charged cryogenic loop heat pipe with wick-mounted condenser

机译:用芯固定冷凝器进行氮气电气低温回路热管性能和特性的实验研究

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摘要

A cryogenic loop heat pipe (CLHP) provides a highly efficient thermal-conductive link between a cryogenic heat source such as an infrared detector and a cryogenic heat sink like a cryocooler in a spacecraft. The CLHP inherently has a large thermal inertia by the influence of latent heat during phase changes and large heat-transfer coefficients in boiling and condensing of working fluid in cryogenic operating temperatures. This paper presents the experimental results of the nitrogen-charged CLHP which adopts the compact cylindrical wick-mounted condenser and its operational characteristics. The improved compact condenser design was proposed and analyzed comparatively. The recovery of the CLHP to normal state after freezing of the working fluid was verified, and the specific matching characteristic of the heat loads on the primary and secondary evaporators were investigated. The thermal performance and thermal-hydraulic behavior of the CLHP with 680 mm effective heat transport length by stepwise heat-loads were analyzed including state-keeping head load change. The effective thermal conductivity of the CLHP was 112,393 W/(m.K) across 680 mm effective length with 3.1 K temperature difference, which is about 230 times higher than that of a pure copper rod (RRR = 300) in 100 K with 12.17 W heat load.
机译:低温回路热管(CLHP)在低温探测器(如红外检测器)之间提供高效的导热连杆,并且在宇宙飞船中像低温冷却器这样的低温散热器。通过在低温操作温度下,通过相变期间和大的传热系数的影响,ClHP固有地具有大的热惯性。本文介绍了采用紧凑型圆柱形芯片的冷凝器的氮气电压的实验结果及其操作特性。提出和分析了改进的紧凑型冷凝器设计。验证了在冻结工作流体冻结后的ClHP恢复到正常状态,并研究了初级和二次蒸发器上的热负荷的具体匹配特性。通过逐步热载具有680mm有效热传输长度的CLHP的热性能和热液压行为,包括状态保持头部负载变化。 ClHP的有效导热率为112,393W /(MK),横跨680毫米的有效长度,3.1k温度差,其在100 k中的纯铜棒(RRR = 300)高约230倍,具有12.17W热量加载。

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