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Irreversible particle motion in surfactant-laden interfaces due to pressure-dependent surface viscosity

机译:依赖于压力的表面粘度导致在充满表面活性剂的界面中发生不可逆的颗粒运动

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摘要

The surface shear viscosity of an insoluble surfactant monolayer often depends strongly on its surface pressure. Here, we show that a particle moving within a bounded monolayer breaks the kinematic reversibility of low-Reynolds-number flows. The Lorentz reciprocal theorem allows such irreversibilities to be computed without solving the full nonlinear equations, giving the leading-order contribution of surface pressure-dependent surface viscosity. In particular, we show that a disc translating or rotating near an interfacial boundary experiences a force in the direction perpendicular to that boundary. In unbounded monolayers, coupled modes of motion can also lead to non-intuitive trajectories, which we illustrate using an interfacial analogue of the Magnus effect. This perturbative approach can be extended to more complex geometries, and to two-dimensional suspensions more generally.
机译:不溶性表面活性剂单层的表面剪切粘度通常很大程度上取决于其表面压力。在这里,我们证明了在有界单层内移动的粒子破坏了低雷诺数流的运动学可逆性。洛伦兹互易定理无需计算完整的非线性方程即可计算此类不可逆性,从而提供了取决于表面压力的表面粘度的前导贡献。特别地,我们表明,在界面边界附近平移或旋转的圆盘在垂直于该边界的方向上经受力。在无边界的单层中,耦合的运动模式也可能导致非直觉的轨迹,我们使用马格努斯效应的界面类似物对此进行了说明。这种微扰方法可以扩展到更复杂的几何形状,并且更广泛地扩展到二维悬架。

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