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An arbitrary Lagrangian-Eulerian method for interfacial flows with insoluble surfactants.

机译:用不溶性表面活性剂进行界面流动的任意拉格朗日-欧拉方法。

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Interfacial flows, fluid flows involving two or more fluids that do not mix, are common in many natural and industrial processes such as rain drop formation, crude oil recovery, polymer blending, fuel spray formation, and so on. Surfactants (surface active substances) play an important role in such processes because they significantly change the interfacial dynamics.; In this thesis, an arbitrary Lagrangian-Eulerian (ALE) method has been developed to numerically simulate interfacial flows with insoluble surfactants. The interface is captured using a coupled level set and volume of fluid method. To evolve the surfactant concentration, the method directly tracks the surfactant mass and the interfacial area. The surfactant concentration, which determines the local surface tension through an equation of state, is then computed as surfactant mass per interfacial area. By directly tracking the surfactant mass, the method conserves the surfactant mass exactly. To accurately approximate the interfacial area, the fluid interface is reconstructed using piecewise parabolas. The evolution of the level set function, volume fraction, interfacial area, and the surfactant mass is performed using an ALE approach. The fluid flow is governed by Stokes equations, which are solved using a finite element method. The surface forces are included in the momentum equation using a continuum surface stress formulation. To efficiently resolve the complex interfacial dynamics, interfacial regions of high surface curvature, and near contact regions between two interacting interfaces, the grid near the interface is adaptively refined.; The method is extendible to axisymmetric and 3D spaces, and can be coupled with other flow solvers, such as Navier-Stokes and viscoelastic flow solvers, as well. The method has been applied to study the effect of surfactants on drop deformation and breakup in an extensional flow. Drop deformation results are compared with available experimental and theoretical results in the literature. The dynamics that guide the effect of surfactants on drop deformation are revealed by examining the variable surface tension, the Marangoni force, and the surfactant concentration profiles. This study will contribute to improved understanding and control of processes such as polymer blending, fuel spray formation, crude oil recovery, and so on.
机译:界面流,即涉及两种或多种不混合的流体的流体流,在许多自然和工业过程中都很常见,例如雨滴形成,原油采收,聚合物共混,燃料喷雾形成等。表面活性剂(表面活性物质)在此类过程中起着重要作用,因为它们会显着改变界面动力学。本文提出了一种任意的拉格朗日-欧拉(ALE)方法来数值模拟不溶性表面活性剂的界面流动。使用耦合液位集和流体体积方法捕获界面。为了提高表面活性剂的浓度,该方法直接跟踪表面活性剂的质量和界面面积。然后通过状态方程确定表面活性剂浓度的表面活性剂浓度计算为每界面面积的表面活性剂质量。通过直接跟踪表面活性剂质量,该方法精确地节省了表面活性剂质量。为了精确地估计界面面积,使用分段抛物线重建了流体界面。使用ALE方法进行水平设定函数,体积分数,界面面积和表面活性剂质量的演变。流体流由斯托克斯方程控制,该方程使用有限元方法求解。使用连续表面应力公式将表面力包括在动量方程中。为了有效地解决复杂的界面动力学,高表面曲率的界面区域以及两个相互作用的界面之间的靠近接触区域的问题,对界面附近的网格进行了自适应调整。该方法可扩展到轴对称和3D空间,并且可以与其他流动求解器(例如Navier-Stokes和粘弹性流动求解器)耦合。该方法已用于研究表面活性剂对延伸流中液滴变形和破裂的影响。将液滴变形结果与文献中可获得的实验和理论结果进行比较。通过检查可变的表面张力,Marangoni力和表面活性剂浓度曲线,揭示了指导表面活性剂对液滴变形影响的动力学。这项研究将有助于增进对诸如聚合物共混,燃料喷雾形成,原油回收等过程的理解和控制。

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