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首页> 外文期刊>Journal of Fluid Mechanics >Drop deformation and emulsion rheology under the combined influence of uniform electric field and linear flow
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Drop deformation and emulsion rheology under the combined influence of uniform electric field and linear flow

机译:均匀电场和线性流动综合影响下的变形和乳液流变

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摘要

Electrohydrodynamics of a leaky dielectric suspended drop subjected to the combined influence of a uniform electric field and linear velocity field is analysed analytically and numerically. In the limit of small charge convection and small shape deformation, an analytical solution is obtained for the deformed drop shape when the imposed linear flow is of uniaxial extensional type with the extensional component aligned in the direction of the electric field. This perturbation approach is then applied towards obtaining the effect of a uniform electric field on the effective extensional rheology of a dilute emulsion. Key results indicate that the magnitude and sense of drop deformation not only depends on the material properties of the drop and medium but is also governed by the strength of the applied electric field relative to the applied flow field. The interfacial charge convection is found to increase or decrease the drop deformation depending on the direction of electrohydrodynamic flow and relative strength of electric field. The electrohydrodynamic flow and drop deformation modulates the effective extensional viscosity of the emulsion. Importantly, the presence of the electric field leads to strain-rate-dependent effective extensional viscosity of the emulsion. The emulsion is found to exhibit strain-rate thinning/thickening behaviour depending on the drop to medium charge relaxation time scale. The analytically obtained drop shape and deformation are in excellent agreement with numerical simulations for the small deformation ranges.
机译:分析和数值分析了经受均匀电场和线性速度场的组合影响的漏电介质悬浮液的电液动力学。在小电荷对流的极限和小形状变形的极限中,当施加的线性流动是单轴延伸型时,在电场方向上对准的延伸部件的单轴延伸型时,获得分析液。然后将这种扰动方法应用于获得均匀电场对稀释乳液的有效延伸流变学的影响。关键结果表明,下降变形的幅度和感觉不仅取决于下降和介质的材料特性,而且还通过相对于施加的流场的施加电场的强度来控制。发现界面电荷对流根据电学动力流动的方向和电场的相对强度而增加或减小落盘变形。电液动力流动和液滴变形调节乳液的有效延伸粘度。重要的是,电场的存在导致乳液的应变率依赖性的有效延伸粘度。发现乳液表现出应变速率稀释/增厚行为,这取决于培养基到中等电荷弛豫时间尺度。分析获得的液滴形状和变形与小变形范围的数值模拟非常一致。

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