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Experimental Study of Single Phase Heat Transfer and Pressure Loss in a Spiraling Radial Inflow MicroChannel Heat Sink

机译:螺旋径流微通道散热器单相传热与压力损失的实验研究

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摘要

This paper presents an experimental study of the heat transfer and pressure drop characteristics of a single phase high heat flux microchannel cooling system with spiraling radial inflow. The heat sink provides enhanced heat transfer with a simple inlet and outlet design while providing uniform flow distribution. The system is heated from one conducting wall made of copper and uses water as a working fluid. The microchannel has a 1 cm radius and a 300 μn gap height. Experimental results show, on average, a 76% larger pressure drop compared to an analytic model for laminar flow in a parallel disk system with spiral radial inflow. The mean heat transfer coefficients measured are up to four times the heat transfer coefficient for unidirectional laminar fully developed flow between parallel plates with the same gap height. Flow visualization studies indicate the presence of secondary flows and the onset of turbulence at higher flow rates. Combined with the thermally developing nature of the flow, these characteristics lead to enhanced heat transfer coefficients relative to the laminar parallel plate values. Another beneficial feature of this device, for high heat flux cooling applications, is that the thermal gradients on the surface are small. The average variation in surface temperature is 18% of the total bulk fluid temperature gain across the device. The system showed promising cooling characteristics for electronics and concentrated photovoltaics applications with a heat flux of 113 W/cm~2 at a surface temperature of 77℃ and a ratio of pumping power to heat rate of 0.03%.
机译:本文提出了具有螺旋状径向流入的单相高热通量微通道冷却系统的传热和压降特性的实验研究。散热器通过简单的入口和出口设计提供了增强的热传递,同时提供了均匀的流量分配。该系统从一个由铜制成的导电壁加热,并使用水作为工作流体。微通道的半径为1 cm,间隙高度为300μn。实验结果表明,与具有螺旋径向流入的平行盘系统中的层流分析模型相比,平均而言,压降要大76%。对于具有相同间隙高度的平行板之间的单向层流完全展开的流动,测得的平均传热系数是传热系数的四倍。流动可视化研究表明,在较高的流速下,存在二次流动和湍流的发生。结合流的热发展特性,这些特征导致相对于层状平行板值的传热系数增加。对于高热通量冷却应用,该设备的另一个有益特性是表面上的热梯度小。表面温度的平均变化是整个设备中总体液温度增加的18%。该系统在电子和集中光伏应用中显示出令人鼓舞的冷却特性,在表面温度为77℃时的热通量为113 W / cm〜2,泵浦功率与加热率之比为0.03%。

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