首页> 外文会议>International Conference on Nanochannels, Microchannels and Minichannels; 20070618-20; Puebla(MX) >STUDIES ON CONDENSATION OF REFRIGERANTS IN A HIGH ASPECT RATIO MINICHANNEL AND IN A NOVEL MICRO-GROOVE SURFACE HEAT EXCHANGER - DEVELOPMENT OF MICRO-CONDENSERS IN COMPACT TWO PHASE COOLING SYSTEMS
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STUDIES ON CONDENSATION OF REFRIGERANTS IN A HIGH ASPECT RATIO MINICHANNEL AND IN A NOVEL MICRO-GROOVE SURFACE HEAT EXCHANGER - DEVELOPMENT OF MICRO-CONDENSERS IN COMPACT TWO PHASE COOLING SYSTEMS

机译:高比例微通道和新型微槽表面换热器中制冷剂冷凝的研究-紧凑型两相冷却系统中微冷凝器的开发

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Three different refrigerants, R134a, R245fa and HFE7100 were analyzed as working fluids for two-phase cooling of high heat flux electronics in a 0.7 mm hydraulic diameter 190 mm long high aspect ratio minichannel and in a newly developed micro-groove surface condenser. The latter comprised of a micro-groove surface with rectangular grooves of 84 μm in hydraulic diameter with an aspect ratio of 10.6 and headers that directed the refrigerant flow into the grooves. It was concluded that in the minichannel R245fa provides higher heat transfer coefficients compared to R134a with a significantly higher pressure drop. The saturation temperature drop in the same channel created a significant temperature drop for HFE7100 that make the application of such minichannels for cross-flow condensers with this fluid unpractical. The micro-groove surface condenser provided significantly higher heat transfer coefficients compared to the minichannel condenser. The pressure drop in the micro-groove surface condenser was extremely low and imposed just 1C temperature drop on HFE7100 at it highest heat flux. The mass flux of refrigerant in the micro-groove surface condenser is significantly lower compared to conventional mini and microchannel condensers. In its current configuration, the microgroove surface condenser benefits from the possibility of an increase in mass flux resulting in a significant increase in heat transfer coefficient and just a moderate increase in pressure drop.
机译:分析了三种不同的制冷剂R134a,R245fa和HFE7100作为工作流体,用于在0.7 mm液压直径,190 mm长的高长宽比微型通道和新开发的微槽表面冷凝器中对高热通量电子设备进行两相冷却。后者包括一个微槽表面,该表面具有水力直径为84微米,长宽比为10.6的矩形凹槽和将制冷剂引导到凹槽中的集管。结论是,与R134a相比,在小通道中R245fa提供了更高的传热系数,并且压降明显更高。同一通道中的饱和温度下降为HFE7100造成了明显的温度下降,这使得这种微型通道在横流式冷凝器中的应用不可行。与微通道冷凝器相比,微槽表面冷凝器提供了更高的传热系数。微槽表面冷凝器中的压降极低,并且在HFE7100的最高热通量下仅施加了1C的温降。与常规的微型和微通道冷凝器相比,微槽表面冷凝器中制冷剂的质量通量要低得多。在其当前配置中,微槽表面冷凝器受益于质量通量增加的可能性,从而导致传热系数显着增加,而压降仅适度增加。

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