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Numerical investigation of an evaporating meniscus in a heated capillary slot

机译:加热毛细管槽中蒸发弯月面的数值研究

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摘要

This paper numerically studies heat transfer and fluid flow from an evaporating meniscus of a wetting fluid within a heated capillary. A simplified steady state mathematical model is developed for predicting the wicking height of the meniscus and the evaporation mass flow rate which includes: (1) one-dimensional flow and energy equations for the liquid and vapor regions, (2) one-dimensional model for the evaporating meniscus region, and (3) two-dimensional energy equation for the capillary wall. Three parameters, namely, apparent contact angle, cumulative heat transfer, and evaporating meniscus height characterize the evaporating meniscus region. In this paper, the apparent contact angle in the evaporating meniscus is uniquely deduced from the meniscus curvature at the centre of the capillary using the thickness profile obtained from standard extended meniscus theory (which includes the evaporating thin film and bulk meniscus regions). Correlations are obtained for the cumulative heat transfer, apparent contact angle and evaporating meniscus height as a function of the difference between the wall and saturation temperatures from the evaporating thin film theory for the meniscus region, which is called as micromodel. The macroscopic model accounts for wall heat conduction and heat transfer with fluid flow in the liquid and vapor regions. The micromodel deals with heat transfer and fluid flow in the evaporating meniscus region. In this paper, a novel scheme to link the "macroscopic" momentum and energy equations in the capillary slot and the evaporating meniscus through the correlations developed above is proposed. Using this numerical model, the wicking height and the evaporation mass flow rate are estimated and the results are compared with previously conducted experiments. The trends in the numerical results of the mathematical model correlate reasonably well with the experimental data.
机译:本文从数值上研究了加热毛细管内润湿液的蒸发弯月面的传热和流体流动。建立了简化的稳态数学模型来预测弯液面的芯吸高度和蒸发质量流速,该模型包括:(1)液体和蒸汽区域的一维流动和能量方程,(2)流体的一维模型蒸发的弯月面区域,以及(3)毛细管壁的二维能量方程。表观接触角,累积热传递和蒸发弯月面高度这三个参数是蒸发弯月面区域的特征。在本文中,蒸发弯液面中的表观接触角是使用标准扩展弯液面理论(包括蒸发薄膜和块状弯液面区域)获得的厚度轮廓,从毛细管中心弯液面曲率唯一得出的。根据弯月面区域的蒸发薄膜理论,将累积传热,表观接触角和蒸发弯月面高度作为壁与饱和温度之间的差的函数来获得相关性,这被称为微模型。宏观模型考虑了壁在液体和蒸气区域中的流体流动与壁的热传导和热传递。该微模型处理蒸发弯月面区域中的热传递和流体流动。在本文中,提出了一种通过上述关系将毛细管槽中的“宏观”动量和能量方程与蒸发弯液面联系起来的新方案。使用该数值模型,可以估算芯吸高度和蒸发质量流量,并将结果与​​先前进行的实验进行比较。数学模型数值结果的趋势与实验数据有很好的相关性。

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