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On the interfacial roughness scale in turbulent stratified two-phase flow: 3D lattice Boltzmann numerical simulations with forced turbulence and surfactant

机译:在湍流分层两相流中的界面粗糙度尺度上:带强迫湍流和表面活性剂的3D格子Boltzmann数值模拟

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摘要

Numerical 3D simulations of turbulent, stratified two-phase shear flow with a surfactant laden interface were used to test and develop a phenomenological interfacial roughness scale model where the energy required to deform the interface (buoyancy, interfacial tension, and viscous work) is proportional to the turbulent kinetic energy adjacent to the interface.\ud\udThe turbulence was forced in the upper and lower liquids in the simulations, to emulate the interfacial dynamics without requiring (prohibitively) large simulation domains and Reynolds numbers. The addition of surfactant lead to an increased roughness scale (for the same turbulent kinetic energy) due to the introduction of interfacial dilatational elasticity that suppressed horizontal motion parallel to the interface, and enhanced the vertical motion.\ud\udThe phenomenological roughness scale model was not fully developed for dilatational elasticity in this work, but we proposed a source term that represents surfactant induced pressure fluctuations near the interface. This source term should be developed further to account for the relation between surfactant density fluctuations and turbulence adjacent to the interface. We foresee that the roughness scale model can be used as a basis for more general interfacial closure relations in Reynolds averaged turbulence models, where also mobile surfactant is accounted for.
机译:带有表面活性剂界面的湍流分层两相剪切流的3D数值模拟用于测试和开发一种现象学界面粗糙度标度模型,其中使界面变形所需的能量(浮力,界面张力和粘性功)与\ ud \ ud在模拟中迫使湍流在上部和下部液体中进行,以模拟界面动力学,而无需(禁止)大的模拟域和雷诺数。表面活性剂的加入由于引入了界面膨胀弹性而抑制了平行于界面的水平运动,并增强了垂直运动,从而增加了粗糙度尺度(对于相同的湍动能)。\ ud \ ud在这项工作中并未完全针对膨胀弹性进行开发,但我们提出了一个源术语,表示界面附近界面活性剂引起的压力波动。应进一步发展该源术语,以说明表面活性剂密度波动与邻近界面的湍流之间的关系。我们预见到,粗糙度比例模型可以用作雷诺平均湍流模型中更一般的界面闭合关系的基础,在该模型中也考虑了流动表面活性剂。

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