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Nonlinear electrohydrodynamics of slightly deformed oblate drops

机译:扁形扁滴形液滴的非线性电流体动力学

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The transient deformation of a weakly conducting ('leaky dielectric') drop under a uniform DC electric field is computed via an axisymmetric boundary integral method, which accounts for surface charge convection and a finite relaxation time scale over which the drop interface charges. We focus on drops that attain an ultimate oblate (major axis normal to the applied field) steady-state configuration. The computations predict that as the time scale for interfacial charging increases, a shape transition from prolate deformation (major axis parallel to the applied field) to oblate deformation occurs at intermediate times due to the slow buildup of charge at the surface of the drop. Convection of surface charge towards the equator of the drop is shown to weaken the steady-state oblate deformation. Additionally, convection results in sharp shock-like variations in surface charge density near the equator of the drop. Our numerical results are then compared with an experimental system consisting of a millimetre-sized silicone oil drop suspended in castor oil. Agreement in the transient deformation is observed between our numerical results and experimental measurements for moderate electric field strengths. This suggests that both charge relaxation and charge convection are required, in general, to quantify the time-dependent deformation of leaky dielectric drops. Importantly, accurate prediction of the observed modest deformation requires a nonlinear model. Discrepancies between our numerical calculations and experimental results arise as the field strength is increased. We believe that this is due to the observed onset of rotation and three-dimensional flow at such high electric fields in the experiments, which an axisymmetric boundary integral formulation naturally cannot capture.
机译:通过轴对称边界积分法计算均匀直流电场下的弱导电(“漏电介质”)液滴的瞬态变形,该方法考虑了表面电荷对流和液滴界面带电的有限弛豫时间尺度。我们专注于获得最终扁形(垂直于所施加场的主轴)稳态配置的液滴。计算预测,随着界面充电时间尺度的增加,由于液滴表面电荷的缓慢积累,在中间时间会发生从扁形变形(平行于外加磁场的长轴)到扁形变形的形状过渡。朝向液滴赤道的表面电荷的对流显示会减弱稳态的扁形变形。此外,对流会导致液滴赤道附近的表面电荷密度出现剧烈的冲击状变化。然后将我们的数值结果与由悬浮在蓖麻油中的毫米大小的硅油滴组成的实验系统进行比较。我们的数值结果和中等中等电场强度的实验测量结果之间观察到瞬态变形的一致性。这表明通常需要电荷弛豫和电荷对流来量化漏电介质滴的随时间变化的变形。重要的是,对观察到的适度变形的准确预测需要非线性模型。随着场强的增加,我们的数值计算和实验结果之间出现差异。我们认为,这是由于在如此高的电场中观察到旋转和三维流动的开始,而轴对称边界积分公式自然无法捕获。

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