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Response of an emulsion of leaky dielectric drops immersed in a simple shear flow: Drops less conductive than the suspending fluid

机译:浸入简单剪切流中的漏电介质滴的乳液的响应:滴的导电性低于悬浮液

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Direct numerical simulations of the effects of an electric field on an emulsion of drops are presented. A simple shear flow configuration is adopted where the electric field is applied perpendicular to the sliding plates. Both the drops and the suspending fluid are assumed to behave as leaky dielectric fluids. Here, drops less conductive than the suspending fluid with an electrical conductivity ratio smaller than the dielectric permittivity ratio are considered. This combination of electrical properties leads to a viscous fluid motion from the poles to the equator. The response of an emulsion is governed by the competition between the electrical forces, the fluid shear, and the capillary forces. The Mason number [Mn=(3 lambda+2)mu gamma/6(lambda+1)epsilon(0)beta E-2(infinity)2] and the electric capillary number [C-e=epsilon(0)beta(2)E(infinity)(2)a/gamma] are used to describe the response of the systems. As previously observed in experiments at low shear rates, Mn < 0.2, the drops aggregate in chains that tilt under a shear. The competition between the electrical forces and the fluid shear results in shorter chains at intermediate shear rates, 0.2 < Mn < 2.0. As the fluid shear becomes stronger than the electrical attraction, Mn>2.0, the chains of drops break up. The rheological properties mainly depend on the emulsion microstructure. The effective viscosity exhibits a strong shear-thinning response because the chains of drops, which appear at low shear rates, increase the resistance of the system to shear. As the chains shorten and break up, the effective viscosity decreases. The elastic properties of the emulsion are also affected by the presence of the electric field. Normal stress differences arise as a consequence of the deformation of the drops and the surface tension acting on the interface between the fluids. The shape of the drops is determined by the deformation caused by the viscous forces and the deformation due to the electric stresses. At low shear rates, the electric effects are predominant and the application of an electric field leads the drops to deform into oblate shapes. The oblate deformation results in higher stresses in the direction parallel to the shearing motion than perpendicular to it, which results in a significant increase in the first normal stress difference. As the shear rate is increased, the oblate deformation is supplemented by the deformation due to the fluid shear. The deformation caused by the electric field is also responsible for the negative magnitude of the second normal stress difference in three-dimensional emulsions. (C) 2008 American Institute of Physics.
机译:给出了电场对液滴乳液的影响的直接数值模拟。采用简单的剪切流配置,其中垂直于滑板施加电场。液滴和悬浮液均假定为泄漏的介电液。在此,考虑了比悬浮液的导电率比介电常数比小的导电性下降的液滴。电性能的这种组合导致从磁极到赤道的粘性流体运动。乳剂的响应受电场力,流体剪切力和毛细管力之间的竞争支配。梅森数[Mn =(3 lambda + 2)mu gamma / 6(lambda + 1)epsilon(0)beta E-2(infinity)2]和电毛细管数[Ce = epsilon(0)beta(2) E(无穷大)(2)a /γ用于描述系统的响应。如先前在低剪切速率Mn <0.2的实验中观察到的,液滴在剪切力作用下倾斜的链中聚集。电动力和流体剪切力之间的竞争导致在中等剪切率(0.2 2.0时,液滴的链断裂。流变性质主要取决于乳液的微观结构。有效粘度表现出强烈的剪切稀化响应,因为在低剪切速率下出现的液滴链增加了系统的剪切阻力。随着链的缩短和断裂,有效粘度降低。乳液的弹性也受到电场的影响。由于液滴的变形和作用在流体之间的界面上的表面张力的结果而产生法向应力差。液滴的形状取决于由粘性力引起的变形和由电应力引起的变形。在低剪切速率下,电效应是主要的,并且电场的施加导致液滴变形为扁圆形。扁形变形在平行于剪切运动的方向上产生比垂直于垂直于剪切运动的方向更高的应力,这导致第一法向应力差明显增加。随着剪切速率的增加,扁形变形由流体剪切引起的变形补充。由电场引起的变形还导致三维乳液中第二法向应力差的负值。 (C)2008美国物理研究所。

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