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AN IMMERSED BOUNDARY METHOD FOR CALCULATING THE RELATIVE VISCOSITY OF A SUSPENSION OF RIGID PARTICLES

机译:计算刚性颗粒悬浮液相对粘度的浸入边界法

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In this paper, we provide a numerical framework to calculate the relative viscosity of a suspension of rigid particles. A high-resolution background grid is used to solve the flow around the particles. In order to generate infinite number of particles in the suspension, a particle is placed in the center of a cubic cell and periodic boundary conditions are imposed in two directions. The flow around the particle is solved using the second-order accurate curvilinear immersed boundary (CURVIB) method. The particle is discretized with triangular elements, and is treated as a sharp interface immersed boundary by reconstructing the velocities on the fluid nodes adjacent to interface using a quadratic interpolation method. Hydrodynamic torque on the particle has been calculated, to solve the equation of motion for the particle and obtain its angular velocity. Finally, relative viscosity of the suspension has been calculated based on two different methods: (1) the rate of the energy consumption and (2) bulk stress-bulk strain method. The framework has been validated by simulating a suspension of spheres, and comparing the numerical results with the corresponding analytical ones. Very good agreement has been observed between the analytical and the calculated relative viscosities using both methods. This framework is then used to model a suspension with arbitrary complex particles, which demonstrates the effect of shape on the effective viscosity.
机译:在本文中,我们提供了一个数值框架来计算刚性颗粒悬浮液的相对粘度。高分辨率背景网格用于解决粒子周围的流动。为了在悬浮液中生成无限数量的粒子,将粒子放置在立方晶胞的中心,并在两个方向施加周期性边界条件。使用二阶精确曲线沉浸边界(CURVIB)方法求解粒子周围的流动。粒子用三角元素离散化,并通过使用二次插值方法重建与界面相邻的流体节点上的速度,将其视为尖锐的界面浸没边界。计算了粒子上的流体动力转矩,以求解粒子的运动方程并获得其角速度。最终,基于两种不同的方法计算出悬浮液的相对粘度:(1)能量消耗的速率和(2)体应力-大体积应变方法。通过模拟球体的悬浮并将数值结果与相应的分析结果进行比较,验证了该框架的有效性。使用这两种方法在分析粘度和计算的相对粘度之间观察到非常好的一致性。然后使用该框架对具有任意复杂颗粒的悬浮液进行建模,这证明了形状对有效粘度的影响。

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