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首页> 外文期刊>International Journal of Thermal Sciences >Numerical modeling of annular flow with phase change in a microchannel
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Numerical modeling of annular flow with phase change in a microchannel

机译:微通道中具有相变的环形流动的数值模拟

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Phase change phenomena in microchannels have been projected as an effective option for thermal management of various microscale systems. However, for the design of heat sinks which utilize these phenomena, a clear understanding of the physical mechanisms involved, in the microscale domain, is required. In the present study, a numerical simulation is carried out to predict the characteristics of two phase flow with liquid to vapor phase change, in rectangular microchannels for a range of hydraulic diameters. The annular flow pattern, reported to be the most common in microchannel, has been investigated, with water as the flowing medium. The analysis considers, among other parameters, the effect of surface tension on the flow dynamics, which could be significant in microchannels. The mathematical model is numerically solved using a quasi-three dimensional approach, incorporating the variations in the cross-sectional areas of both the phases along the flow direction. Since it is expected that the continuum approximation may be insufficient in the vapor domain in channels of very small dimensions, an analysis incorporating slip flow at the liquid vapor interface analysis has been performed, where the channel dimensions produce Knudsen number values in the range 0.001-0.1, as suggested in the literature. The liquid film thickness along the flow direction is determined utilizing mass conservation, and the velocity distributions at different locations along the flow direction are obtained by solving the governing differential equations numerically. The two phase pressure drop is calculated for cases demanding slip and no slip conditions. A comparison has been made of the fluid flow characteristics, between the slip and no slip cases for the cases where slip flow is expected. The effects of the imposed heat flux, volume flow rate and channel geometry on the velocity distribution and pressure drop are examined. The predicted pressure drop values are found to increase with increasing heat flux, and decrease with an increase in the flow rate and the channel height. The two phase heat transfer coefficient and the wall temperature of the channel are also determined. The two phase heat transfer coefficient is found to increase with an increase in the vapor quality. It is also noticed that the wall temperature decreases along the length of the channel and the wall temperature at the exit of the channel decreases with decrease in volume flow rate, within the range of parameters used, which is in accordance with observations reported in the literature. The results are found to be in good agreement with the experimental and theoretical results available in the literature. (C) 2014 Elsevier Masson SAS. All rights reserved.
机译:预计微通道中的相变现象是各种微尺度系统热管理的有效选择。但是,对于利用这些现象的散热器的设计,需要对所涉及的物理机理有一个清晰的了解,在微观领域。在本研究中,进行了数值模拟,以预测在一定水力直径范围内的矩形微通道中,液相到气相的两相流特征。据报导,在微通道中最常见的环形流型已经以水为流动介质进行了研究。除其他参数外,该分析考虑了表面张力对流动动力学的影响,这在微通道中可能非常重要。使用准三维方法对数学模型进行数值求解,并结合沿流动方向的两个相的横截面积的变化。由于预计在非常小的尺寸通道中,在蒸汽域中的连续近似可能不足,因此已进行了在液-气界面分析中合并滑流的分析,其中通道尺寸产生的克努森数值在0.001- 0.1,如文献所建议。利用质量守恒确定沿流向的液膜厚度,并通过数值求解控制微分方程获得沿流向的不同位置的速度分布。对于要求打滑和无打滑情况的情况,计算两相压降。对于预期打滑的情况,在打滑情况和无打滑情况之间进行了流体流动特性的比较。检查了施加的热通量,体积流量和通道几何形状对速度分布和压降的影响。发现预测的压降值随热通量的增加而增加,而随流速和通道高度的增加而减小。还确定了两相传热系数和通道的壁温。发现两相传热系数随着蒸气质量的增加而增加。还应注意的是,在所使用的参数范围内,壁温沿通道的长度降低,通道出口的壁温随着体积流量的降低而降低,这与文献报道的观察结果一致。 。发现结果与文献中可获得的实验和理论结果高度吻合。 (C)2014 Elsevier Masson SAS。版权所有。

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