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Simulating Liquids and Solid-Liquid Interactions with Lagrangian Meshes

机译:用拉格朗日网格模拟液体和固液相互作用

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This article describes a Lagrangian finite element method that simulates the behavior of liquids and solids in a unified framework. Local mesh improvement operations maintain a high-quality tetrahedral discretization even as the mesh is advected by fluid flow.We conserve volume and momentum, locally and globally, by assigning to each element an independent rest volume and adjusting it to correct for deviations during remeshing and collisions. Incompressibility is enforced with per-node pressure values, and extra degrees of freedom are selectively inserted to prevent pressure locking. Topological changes in the domain are explicitly treated with local mesh splitting and merging. Our method models surface tension with an implicit formulation based on surface energies computed on the boundary of the volume mesh. With this method we can model elastic, plastic, and liquid materials in a single mesh, with no need for explicit coupling.We also model heat diffusion and thermoelastic effects, which allow us to simulate phase changes. We demonstrate these capabilities in several fluid simulations at scales from millimeters to meters, including simulations of melting caused by external or thermoelastic heating. Simulation, finite element method,
机译:本文介绍了拉格朗日有限元方法,该方法可在统一框架中模拟液体和固体的行为。即使网格物体受到流体流动的影响,局部网格物体的改进操作仍可保持高质量的四面体离散化效果。我们通过为每个元素分配独立的静止体积并对其进行调整以校正在重新网格化时的偏差来节省局部和全局的体积和动量。碰撞。每个节点的压力值强制执行不可压缩性,并有选择地插入额外的自由度以防止压力锁定。通过局部网格划分和合并显式地处理域中的拓扑更改。我们的方法使用基于在体积网格边界上计算的表面能的隐式公式对表面张力进行建模。通过这种方法,我们可以在单个网格中对弹性,塑料和液体材料进行建模,而无需显式耦合;还可以对热扩散和热弹性效应进行建模,从而可以模拟相变。我们在几毫米到几米的流体模拟中演示了这些功能,包括由外部或热弹性加热引起的熔化模拟。模拟,有限元法,

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