论文标题

光谱边界积分方法用于模拟粘性液滴中的电水力流动流

A spectral boundary integral method for simulating electrohydrodynamic flows in viscous drops

论文作者

Firouznia, Mohammadhossein, Bryngelson, Spencer H., Saintillan, David

论文摘要

浸入另一种泄漏的介电液体中的弱传导的液滴可以在施加的电场的效果下表现出丰富的动力学行为。根据材料特性和野外强度,界面电荷转运和流体流的非线性耦合可以触发电水动力不稳定性,从而导致形成变形和复杂的动力学。我们提出了一种光谱边界积分方法,以模拟均匀电场中的液滴电水动力学。使用球形谐波扩展表示所有物理变量,例如滴加形状和界面电荷密度。除指数准确性外,光谱表示还提供了一种数值稳定性所需的非隔离性交易方法。在各种电场强度下有效的综合电荷传输模型,占电荷松弛,欧姆传导和表面电荷对流的说明。形状重新训练技术可以探索明显的液滴变形机制。对于低粘度降低,流动的对流驱动降落赤道附近的陡峭界面电荷梯度。这引入了我们通过加权球形谐波膨胀处理的数值振铃伪像,从而导致溶液收敛。该方法和模拟是根据轴对称泰勒和Quincke电动型轴对称数据和分析预测进行验证的。

A weakly conducting liquid droplet immersed in another leaky dielectric liquid can exhibit rich dynamical behaviors under the effect of an applied electric field. Depending on material properties and field strength, the nonlinear coupling of interfacial charge transport and fluid flow can trigger electrohydrodynamic instabilities that lead to shape deformations and complex dynamics. We present a spectral boundary integral method to simulate droplet electrohydrodynamics in a uniform electric field. All physical variables, such as drop shape and interfacial charge density, are represented using spherical harmonic expansions. In addition to its exponential accuracy, the spectral representation affords a nondissipative dealiasing method required for numerical stability. A comprehensive charge transport model, valid under a wide range of electric field strengths, accounts for charge relaxation, Ohmic conduction, and surface charge convection by the flow. A shape reparametrization technique enables the exploration of significant droplet deformation regimes. For low-viscosity drops, the convection by the flow drives steep interfacial charge gradients near the drop equator. This introduces numerical ringing artifacts we treat via a weighted spherical harmonic expansion, resulting in solution convergence. The method and simulations are validated against experimental data and analytical predictions in the axisymmetric Taylor and Quincke electrorotation regimes.

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