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THERMO-HYDRAULIC BEHAVIOR OF MICROCHANNEL HEAT EXCHANGER SYSTEM

机译:微通道换热器的热液行为

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This article presents an experimental study of thermo-hydrodynamic phenomena in a mi-crochannel heat exchanger system. The aim of this investigation is to develop correlations between flow/thermal characteristics in the manifolds and the heat transfer performance of the microchannel. A rectangular microchannel fabricated by a laser-machining technique with channel width and hydraulic diameter of 87μm and 0.17 mm, respectively, and a trapezoidal-shaped manifold are used in this study. The heat sink is subjected to iso-flux heating condition with liquid convective cooling through the channels. The temporal and spatial evolutions of temperature as well as total pressure drop across the system are monitored using appropriate sensors. Data obtained from this study were used to establish relationships between parameters such as longitudinal wall conduction factor, residence and switching time, and thermal spreading resistance with Reynolds number. Result shows that there exist an optimum Reynolds number and conditions for the microchannel heat exchanger system to result in maximum heat transfer performance. The condition in which the inlet manifold temperature surpasses the exit fluid temperature results in lower junction temperature. It further shows that for a high Reynolds number, the longitudinal wall conduction parameter is greater than unity and that the fluid has sufficient dwelling time to absorb heat from the wall of the manifold, leading to high thermal performance.
机译:本文介绍了微通道热交换器系统中热流体动力学现象的实验研究。该研究的目的是开发歧管中的流量/热特性与微通道的传热性能之间的相关性。本研究使用的是通过激光加工技术制造的矩形微通道,其通道宽度和水力直径分别为87μm和0.17 mm,以及梯形歧管。散热器通过通道进行液体对流冷却,处于等通量加热状态。使用适当的传感器监视温度的时空变化以及整个系统的总压降。从这项研究中获得的数据用于建立参数之间的关系,例如纵向壁传导系数,停留和切换时间,以及具有雷诺数的热扩散阻力。结果表明,微通道换热器系统存在最佳的雷诺数和条件,以实现最大的传热性能。进气歧管温度超过出口流体温度的条件导致结温降低。它进一步显示,对于高雷诺数,纵向壁传导参数大于1,并且流体具有足够的停留时间以吸收来自歧管壁的热量,从而导致较高的热性能。

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