We present a robust and efficient method for simulating Lagrangian solid-fluid coupling based on a new operator splitting strategy. We use variational formulations to approximate fluid properties and solid-fluid interactions, and introduce a unified two-way coupling formulation for SPH fluids and FEM solids using interior point barrier-based frictional contact. We split the resulting optimization problem into a fluid phase and a solid-coupling phase using a novel time-splitting approach with augmented contact proxies, and propose efficient custom linear solvers. Our technique accounts for fluids interaction with nonlinear hyperelastic objects of different geometries and codimensions, while maintaining an algorithmically guaranteed non-penetrating criterion. Comprehensive benchmarks and experiments demonstrate the efficacy of our method.
翻译:我们根据新的操作员分裂战略,提出了模拟拉格朗吉亚固体流体结流的强大而有效的方法。我们使用变式配方来接近流体特性和固体流体相互作用,并采用内部屏障摩擦接触,对SPH液体和FEM固体采用统一的双向配方。我们将由此产生的优化问题分成一个流体阶段和一个固态相联阶段,采用新的分时间方法来增加接触代理人,并提出高效的定制线性溶液。我们的技术核算了液体与不同地貌和共振的非线性超弹性物体的相互作用,同时保持了一种有逻辑保证的非穿透标准。全面的基准和实验显示了我们方法的功效。