首页> 外文期刊>Bulletin of the American Physical Society >APS -70th Annual Meeting of the APS Division of Fluid Dynamics- Event - Buoyancy-Marangoni convection in confined volatile binary fluids subject to a horizontal temperature gradient
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APS -70th Annual Meeting of the APS Division of Fluid Dynamics- Event - Buoyancy-Marangoni convection in confined volatile binary fluids subject to a horizontal temperature gradient

机译:APS-APS流体动力学分部第70届年会-事件-受水平温度梯度影响的受限挥发性二元流体中的浮力-Marangoni对流

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摘要

We consider convection in a layer of binary fluid with free surface subject to a horizontal temperature gradient in the presence of noncondensable gases, which is driven by a combination of three different forces: buoyancy, thermocapillarity, and solutocapillarity. Unlike buoyancy, both thermo- and solutocapillary stresses depend sensitively on the local phase equilibrium at the liquid-gas interface. In particular, thermocapillarity associated with the interfacial temperature gradient is controlled by the vapors' concentration along the interface, and solutocapillarity associated with the interfacial concentration gradient is controlled by differential phase change of two components of the liquid, which is strongly influenced by the presence of noncondensables. Therefore, flows in both phases, phase change,and effect of noncondensables all have to be considered. Numerical simulations based on a comprehensive model taking these effects into account show qualitative agreement with recent experiments which identified a number of flow regimes at various compositions of both phases. In particular,we find that the composition of both the gas and liquid phase have a significant effect on the observed convection patterns; this dependence can be understood using a simple analytical model.
机译:我们考虑在存在不凝性气体的情况下,具有自由表面的二元流体层中的对流会受到水平温度梯度的影响,这是由三种不同力的组合所驱动的:浮力,热毛细作用和溶质作用。与浮力不同,热和应力毛细管应力都敏感地取决于液-气界面处的局部相平衡。特别是,与界面温度梯度相关的热毛细作用由沿界面的蒸气浓度控制,与界面浓度梯度相关的溶孔性由液体中两种组分的微分相变控制,这在很大程度上取决于液体的存在。不凝性。因此,必须同时考虑两相流动,相变和非凝结物的影响。基于综合模型的数值模拟考虑了这些影响,显示出与最近的实验在质量上的一致性,最近的实验确定了两相不同组成下的许多流动状态。尤其是,我们发现气相和液相的组成都对观测到的对流模式有重大影响。使用简单的分析模型可以理解这种依赖性。

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