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Sub-atmospheric boiling heat transfer and thermal performance of two-phase loop thermosyphon

机译:两相回路热虹吸管的低于大气压的沸腾传热和热性能

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摘要

This experimental study investigates the thermal performances of a two phase loop thermosyphon (TPLT) by examining the boiling heat transfer and instabilities, the thermodynamic cycles and the constituent and overall thermal resistances with the aid of boiling flow structures collected from visualization tests. With water as the working fluid, the phase-change pressures in this TPLT at the temperature range typical for electronic cooling applications are sub-atmospheric. Followed by increasing the boiling heat flux at sub-atmospheric pressures, the transition of boiling structures from intermittent Taylor bubble to continuous bubbly flows reverses the transition route at positive pressures and triggers two different types of boiling instabilities. A set of selected results illustrates the interdependent impacts of boiling heater power (Q) and condenser thermal resistance (R _(th,con)) on each thermal property investigated. Three sets of heat transfer correlations for determining the boiling heat transfer coefficients over pool-boiling, intermittent and vapor regions of the evaporator along with two sets of empirical correlations that permit the evaluation of individual and interdependent Q and R _(th,con) effects on overall thermal resistances and evaporator pressures of the tested TPLT are generated. The applicable conditions for these empirical correlations considerably extend the lower end of pressure range available in the open literature, which add design capabilities for two-phase heat transfer devices operating at sub-atmospheric pressures.
机译:这项实验研究借助可视化测试收集的沸腾流动结构,通过检查沸腾传热和不稳定性,热力学循环以及组成和整体热阻,研究了两相回路热虹吸管(TPLT)的热性能。使用水作为工作流体,该TPLT中在电子冷却应用中典型的温度范围内的相变压力低于大气压。随后在低于大气压的压力下增加沸腾热通量,沸腾结构从间歇性泰勒气泡向连续气泡流的转变逆转了正压下的转变路径,并引发了两种不同类型的沸腾不稳定性。一组选定的结果说明了沸腾加热器功率(Q)和冷凝器热阻(R_(th,con))对所研究的每种热性能的相互依存影响。三组传热相关性,用于确定蒸发器池沸腾,间歇和蒸气区域的沸腾传热系数,以及两组经验性相关性,可用于评估各个和相互依赖的Q和R _(th,con)效应产生了测试TPLT的整体热阻和蒸发器压力。这些经验相关性的适用条件极大地扩展了公开文献中可用的压力范围的下限,从而增加了在低于大气压下工作的两相传热装置的设计能力。

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