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首页> 外文期刊>International Journal of Heat and Mass Transfer >Operational characteristics of the miniature loop heat pipe with non-condensable gases
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Operational characteristics of the miniature loop heat pipe with non-condensable gases

机译:带有不可冷凝气体的微型回路热管的运行特性

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The present paper experimentally investigates the effect of non-condensable gases (NCGs) on the thermal performance of the miniature loop heat pipe (mLHP). Copper mLHP with the flat disk shaped evaporator, 30 mm diameter and 10 mm thick, and fin-and-tube type condenser, 50 mm length and 10 mm height, located at a distance of 150 mm was used in the study. The device which was designed for the thermal control of computer microprocessor was capable of transferring maximum heat load of 70 W while maintaining evaporator temperature below 100 ℃ limit for electronic equipments. Water was used as the heat transfer fluid inside the mLHP. All the tests were conducted with the evaporator and condenser at the same horizontal level. Simple methods were devised to detect and purge the generated NCG out of the loop heat pipe without disassembling the system. Experiments conducted to classify the trends in the NCG production and storage revealed that majority of the gas is generated in the first few thermal runs and is accumulated in the compensation chamber. Sensitivity tests show that overall effect of the NCG is to elevate the steady-state operating temperature of the loop and increase the start-up time required by the evaporator to achieve stable conditions for the given heat load. As an outcomes of the research work, it can be concluded that mLHPs are more tolerable to the NCGs than conventional heat pipes due to the presence of compensation chamber that can accumulate most of the released gas without major performance degradation.
机译:本文通过实验研究了不可冷凝气体(NCG)对微型回路热管(mLHP)的热性能的影响。在研究中,使用了直径30 mm,厚度10 mm的平盘形蒸发器的铜mLHP和长度为50 mm,高度为10 mm的翅片管式冷凝器,间距为150 mm。设计用于计算机微处理器的热控制的设备能够传递70 W的最大热负荷,同时将电子设备的蒸发器温度保持在100℃极限以下。水被用作mLHP内部的传热流体。所有测试均在同一水平面上使用蒸发器和冷凝器进行。设计了简单的方法来检测生成的NCG并将其从回路热管中清除,而无需拆卸系统。对NCG生产和存储趋势进行分类的实验表明,大部分气体是在最初的几次热运行中产生的,并累积在补偿室中。灵敏度测试表明,NCG的总体作用是提高环路的稳态工作温度,并增加蒸发器为给定热负荷达到稳定条件所需的启动时间。作为研究工作的结果,可以得出结论,由于存在补偿室,mLHP比传统的热管对NCG的耐受性更高,该补偿室可以积聚大部分释放的气体而不会造成主要性能下降。

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