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首页> 外文期刊>Computational Mechanics: Solids, Fluids, Fracture Transport Phenomena and Variational Methods >A smoothed particle hydrodynamics study on the electrohydrodynamic deformation of a droplet suspended in a neutrally buoyant Newtonian fluid
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A smoothed particle hydrodynamics study on the electrohydrodynamic deformation of a droplet suspended in a neutrally buoyant Newtonian fluid

机译:悬浮在中性浮力牛顿流体中的液滴的电流体动力学变形的光滑粒子流体力学研究

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In this paper, we have presented a 2D Lagrangian two-phase numerical model to study the deformation of a droplet suspended in a quiescent fluid subjected to the combined effects of viscous, surface tension and electric field forces. The electrostatics phenomena are coupled to hydrodynamics through the solution of a set of Maxwell equations. The relevant Maxwell equations and associated interface conditions are simplified relying on the assumptions of the so-called leaky dielectric model. All governing equations and the pertinent jump and boundary conditions are discretized in space using the incompressible Smoothed Particle Hydrodynamics method with improved interface and boundary treatments. Upon imposing constant electrical potentials to upper and lower horizontal boundaries, the droplet starts acquiring either prolate or oblate shape, and shows rather different flow patterns within itself and in its vicinity depending on the ratios of the electrical permittivities and conductivities of the constituent phases. The effects of the strength of the applied electric field, permittivity, surface tension, and the initial droplet radius on the droplet deformation parameter have been investigated in detail. Numerical results are validated by two highly credential analytical results which have been frequently cited in the literature. The numerically and analytically calculated droplet deformation parameters show good agreement for small oblate and prolate deformations. However, for some higher values of the droplet deformation parameter, numerical results overestimate the droplet deformation parameter. This situation was also reported in literature and is due to the assumption made in both theories, which is that the droplet deformation is rather small, and hence the droplet remains almost circular. Moreover, the flow circulations and their corresponding velocities in the inner and outer fluids are in agreement with theories.
机译:在本文中,我们提出了一个二维拉格朗日两相数值模型,以研究在粘性,表面张力和电场力共同作用下悬浮在静态流体中的液滴的变形。通过一组麦克斯韦方程组的解,静电现象与流体动力学耦合。依赖于所谓的漏电模型的假设,简化了相关的麦​​克斯韦方程和相关的界面条件。使用具有改进的界面和边界处理的不可压缩的“平滑粒子流体动力学”方法,可以在空间中离散所有控制方程式以及相关的跳跃和边界条件。在上下水平边界上施加恒定电势后,液滴开始呈扁长形或扁圆形形状,并且根据组成相的电导率和电导率的比率,在其内部及其附近显示出相当不同的流动模式。详细研究了施加的电场强度,介电常数,表面张力和初始液滴半径对液滴变形参数的影响。数值结果由两个在文献中经常引用的高度可信的分析结果验证。数值计算和分析计算得出的液滴变形参数对于较小的扁形和扁形变形显示出良好的一致性。但是,对于较高的液滴变形参数值,数值结果会高估液滴变形参数。文献中也报道了这种情况,这是由于在两种理论中都做出了假设,即液滴变形很小,因此液滴几乎保持圆形。而且,内部和外部流体中的流动循环及其相应的速度与理论一致。

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