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A Unified Adaptive Cartesian Grid Method for Solid-Multiphase Fluid Dynamics with Moving Boundaries

机译:具有移动边界的固体多相流体动力学统一的自适应笛卡尔栅格方法

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Numerical simulations of flows involving moving boundaries are challenging as they need to address the location and the conditions of the interface that interacts with the flow field. We have developed a unified, marker-based approach, which can treat moving solid and multiphase fluid dynamics using adaptively refined Cartesian grids. The interfaces separating the fluid phases are modeled using a continuous interface method, while the no-slip condition on solid interfaces is imposed by a sharp interface method. A smoothly varying Heaviside-like function is used for handling discontinuous material properties between fluids and for identifying the solid-fluid interface location. Furthermore, a distance-based formulation is adopted to treat solid-fluid interface intersections. A domain decomposition method via Hilbert space filling curves and preconditioned multigrid solvers are incorporated into the staggered grid arrangement for scalar and velocity variables. To highlight the performance of the present approach, case studies are conducted for (i) interface shapes, residual volumes, formation of sloshes and corresponding wave periods in draining tank with different control parameters and flow regimes, (ii) fluid dynamics around a flapping airfoil, and (iii) fluid flow around complex solid geometries.
机译:涉及移动边界的流量的数值模拟是具有挑战性的,因为它们需要解决与流场交互的接口的位置和条件。我们开发了一种统一的基于标记的方法,可以使用自适应的精制笛卡尔栅格来治疗移动的固体和多相流体动力学。分离流体相的接口是使用连续接口方法进行建模的,而通过尖锐的接口方法施加固体界面上的无滑移条件。可以平稳变化的沉重样功能用于处理流体之间的不连续材料特性,并用于识别固体流体接口位置。此外,采用距离的制剂来处理固体流体接口交叉点。通过Hilbert Space填充曲线和预处理的多体求解器的域分解方法结合到用于标量和速度变量的交错网格布置中。为了突出本方法的性能,对(i)界面形状,残余体积,杆状物的裂缝形状,残留体积,杆状件的形成和相应的波段进行了案例研究,其中排出箱具有不同的控制参数和流量制度,(ii)围绕翼型的流体动力学(III)复合实体几何形状周围的流体流动。

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