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A Multigrid Fluid Pressure Solver Handling Separating Solid Boundary Conditions

机译:分离固体边界条件的多网格流体压力求解器

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摘要

We present a multigrid method for solving the linear complementarity problem (LCP) resulting from discretizing the Poisson equation subject to separating solid boundary conditions in an Eulerian liquid simulation's pressure projection step. The method requires only a few small changes to a multigrid solver for linear systems. Our generalized solver is fast enough to handle 3D liquid simulations with separating boundary conditions in practical domain sizes. Previous methods could only handle relatively small 2D domains in reasonable time, because they used expensive quadratic programming (QP) solvers. We demonstrate our technique in several practical scenarios, including nonaxis-aligned containers and moving solids in which the omission of separating boundary conditions results in disturbing artifacts of liquid sticking to solids. Our measurements show, that the convergence rate of our LCP solver is close to that of a standard multigrid solver.
机译:我们提出了一种求解线性互补问题(LCP)的多重网格方法,该线性互补问题是由离散泊松方程离散化而产生的,该离散泊松方程在分离欧拉液体模拟的压力投影步骤中会遇到固相边界条件。该方法只需要对线性系统的多网格求解器进行少量改动即可。我们的通用求解器足够快,可以处理3D液体模拟,并在实际域大小中分离边界条件。以前的方法只能在合理的时间内处理相对较小的2D域,因为它们使用了昂贵的二次规划(QP)求解器。我们在几种实际情况中展示了我们的技术,包括非轴对齐的容器和移动的固体,其中省略边界条件会导致令人不安的液体粘附在固体上的伪影。我们的测量表明,我们的LCP求解器的收敛速度接近于标准的多网格求解器。

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