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Wettability Effects on Falling Film Flow and Heat Transfer Over Horizontal Tubes in Jet Flow Mode

机译:喷射流动模式下水平管的液体薄膜流量和传热的润湿性效应

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The performance of a falling-film heat exchanger is strongly linked to the surface characteristics and the heat transfer processes that take place over the tubes. The primary aim of this numerical study is to characterize the influence of surface wettability on the film flow behavior and its associated surface heat transfer in the jet-flow mode. Volume of fluid (VOF) based simulations are carried out for horizontal tubes with different surface wettabilities. The wettability of the tube surfaces is represented using the Kistler's dynamic contact angle model. Surface wettability effects ranging from superhydrophilic to superhydrophobic are studied by varying the equilibrium contact angle from 2 deg to 175deg. Two different liquid mass flow rates of 0.06 and 0.l8kg/m-s corresponding to the inline and staggered jet flow modes are studied. Results are presented in terms of the liquid film thickness, the contact areas between the different phases (solid-liquid and liquid-air), and the heat transfer coefficient or Nusselt number. The resistance imposed by the increasing contact angles inhibits the extent of the liquid spreading over the tube surface, and this, in turn, influences the liquid film thickness, and the wetted area of the tube surface. A significant decrement in the heat transfer rate from the tube surfaces was observed as the equilibrium contact angle increased from 2 deg to 175 deg. The local distributions of the Nusselt number over the tube surface are strongly influenced by the flow recirculation in the liquid bulk.
机译:落膜热交换器的性能与表面特性和传热过程强烈地连接在管中。该数值研究的主要目的是表征表面润湿性对膜流动行为的影响及其在射流模式下的相关表面传热。用于具有不同表面湿润的水平管的流体(VOF)模拟的体积。使用Kistler的动态接触角模型表示管表面的润湿性。通过改变2℃至175deg的平衡接触角来研究从超硫酸的超冷却到超疏水的表面润湿性效应。研究了与内联和交错射流模式相对应的0.06和0.L8kg / m-s的两种不同的液体质量流速。结果以液体膜厚度,不同相(固体液体和液体 - 空气)和传热系数或露珠数而言。随着增加的接触角施加的电阻抑制了在管表面上扩散的液体的程度,并且这反过来影响管表面的液体膜厚度和湿润的区域。随着平衡接触角从2°增加到175°,观察到来自管表面的传热速率的显着减小。在管表面上的营地数的局部分布受到液体体积中的流动再循环的强烈影响。

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