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Parallel adaptive simplical re-meshing for deforming domain CFD computations

机译:用于变形域CFD计算的并行自适应简化重新网格划分

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Deforming domains occur in many fields of computational fluid dynamics (CFD), such as interface tracking, simulation of pumps and engines, and fluid/structure interaction. The deformation of the domain presents a challenge to the integrity of the computational mesh; substantial motion of the domain boundaries requires vertex motion and changes in mesh connectivity. For cases of simple boundary motion or structured meshes, predetermined changes to the mesh structure can be sufficient. However, without a priori-knowledge of how the domain will change, a more robust solution is required. The present work offers a parallelized solution for simplical meshes that is well-suited to extremely complex geometry. The mesh continuously evolves without user intervention or the use of target meshes. Varying length scales imposed by evolving boundary curvatures and narrow gaps are resolved with a fast length-scale algorithm. The set of algorithms are incorporated into an object-oriented code structure that permits broad application to a range of CFD problems. The robustness and versatility of the algorithm is demonstrated in several examples, representing motion of internal and external boundaries, where the boundary motion may or may not be known a priori. (C) 2015 Elsevier Inc. All rights reserved.
机译:变形域出现在计算流体动力学(CFD)的许多领域中,例如界面跟踪,泵和发动机的模拟以及流体/结构相互作用。域的变形对计算网格的完整性提出了挑战。域边界的大量运动需要顶点运动和网格连接性的变化。对于简单的边界运动或结构化的网格,对网格结构进行预定更改就足够了。但是,如果不事先了解域的变化方式,则需要更强大的解决方案。本工作为简单网格提供了并行解决方案,非常适合于极其复杂的几何形状。网格不断发展,无需用户干预或使用目标网格。用快速的长度尺度算法可以解决由不断变化的边界曲率和狭窄的间隙所引起的变化的长度尺度。这套算法被并入到面向对象的代码结构中,从而可以广泛应用于一系列CFD问题。在几个示例中证明了算法的鲁棒性和通用性,这些示例表示内部和外部边界的运动,其中边界运动可能是先验的,也可能不是先验的。 (C)2015 Elsevier Inc.保留所有权利。

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