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Experimental and numerical investigation of evaporative heat transfer in the vicinity of the 3-phase contact line

机译:三相接触线附近蒸发热传递的实验性和数值研究

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An experimental study has been performed with a single liquid-vapor meniscus formed in a vertical channel of 600 µm width between two flat parallel plates. A 10 µm thick stainless steel heating foil forms a part of one of the flat plates. HFE7100 was used as test fluid. Liquid is sucked into the gap between the plates due to capillary forces and evaporates inside the gap under steady state conditions. The high evaporation rates in the vicinity of the 3-phase contact line lead to high temperature gradients along the heating foil. The two-dimensional micro-scale temperature field at the back side of the heating foil is observed with an infrared camera. On the basis of these temperature measurements a local temperature drop at the micro region is defined as the difference between the maximum wall temperature underneath the wetted portion of the foil and the minimal wall temperature in the vicinity of the contact line area. The distribution of the local wall heat flux is calculated from the measured wall temperature field using an energy balance for each pixel element. A numerical model of heat transfer in the vicinity of evaporating contact line has been developed. This model takes into account the heat conduction in the heating foil and in the liquid, the heat generation in the foil due to the Joule effect and the local evaporation phenomena in the micro region. A modular modelling strategy has been applied, where the solution of the energy equation on a macroscopic scale is combined with a solution of the set of highly nonlinear ordinary differential equations describing the phenomena in the micro region. The results of the numerical modeling are in agreement with the experimental observations. The measured and computed temperature drop in the micro region increases linearly with the input heat flux.
机译:在两个平平平平板之间的垂直通道中形成的单个液 - 蒸气弯月面进行了实验研究,在600μm宽度之间形成。 10μm厚的不锈钢加热箔形成一个平板之一的一部分。 HFE7100用作测试液。由于毛细力,液体被吸入平板之间的间隙,并在稳态条件下在间隙内蒸发。 3相接触线附近的高蒸发速率导致沿加热箔的高温梯度。用红外相机观察加热箔后侧的二维微刻度温度场。基于这些温度测量,微区域的局部温度下降被定义为箔的湿润部分下方的最大壁温和接触线区域附近的最小壁温之间的差异。使用每个像素元件的能量平衡,从测量的壁温场计算局部壁热通量的分布。已经开发了蒸发接触线附近的传热的数值模型。该模型考虑了加热箔和液体中的热传导,由于焦耳效应和微区域中的局部蒸发现象,箔中的热量产生。应用了模块化建模策略,其中能量方程对宏观刻度的解决方案与描述微区域中现象的一组高度非线性常微分方程的解决方案组合。数值建模的结果与实验观察结果一致。微区域中的测量和计算的温度下降随输入热通量线性增加。

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