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Numerical Investigation of Miniature Ejector Refrigeration System Embedded with a Capillary Pump Loop

机译:嵌入毛细管回路的微型喷射器制冷系统的数值研究

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摘要

A miniature steam ejector refrigeration system embedded with a capillary pump loop can result in a compact design which can be used for electronics cooling. In this paper, computational fluid dynamics (CFD) is employed to investigate the effects of the area ratio of the ejector constant-area mixing section to the nozzle throat, the length of the constant-area section, and the nozzle exit position (NXP), on the performance of a miniature steam ejector. Results show that the performance of the miniature steam ejector is very sensitive to the area ratio of the constant-area mixing section to the nozzle. For the needs of practical application, the area ratio of the constant-area mixing section to the nozzle should be smaller than 16 when the temperature of the primary flow is 60 °C. The NXP plays an important role in the flow phenomena inside the miniature ejector. The critical back pressure is more sensitive to length of the constant-area mixing section than the entrainment ratio. Results of this investigation provided a good solution to the miniature steam ejector embedded with a capillary pump loop for electronics cooling application.
机译:嵌入了毛细管泵回路的微型蒸汽喷射器制冷系统可实现紧凑的设计,可用于电子设备冷却。本文采用计算流体力学(CFD)来研究喷射器恒定面积混合段与喷嘴喉部的面积比,恒定面积段的长度以及喷嘴出口位置(NXP)的影响,在微型蒸汽喷射器的性能。结果表明,微型蒸汽喷射器的性能对恒定面积混合段与喷嘴的面积比非常敏感。为了实际应用的需要,当主流温度为60°C时,恒定面积混合段与喷嘴的面积比应小于16。恩智浦在微型喷射器内部的流动现象中起着重要作用。临界背压对恒定面积混合段的长度比对夹带率更敏感。这项研究的结果为嵌有用于电子冷却应用的毛细管泵回路的微型蒸汽喷射器提供了一个很好的解决方案。

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