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Agglomeration Multigrid for an Unstructured-Grid Flow Solver

机译:非结构化网格流量求解器的凝聚多网格

摘要

An agglomeration multigrid scheme has been implemented into the sequential version of the NASA code USM3Dns, tetrahedral cell-centered finite volume Euler/Navier-Stokes flow solver. Efficiency and robustness of the multigrid-enhanced flow solver have been assessed for three configurations assuming an inviscid flow and one configuration assuming a viscous fully turbulent flow. The inviscid studies include a transonic flow over the ONERA M6 wing and a generic business jet with flow-through nacelles and a low subsonic flow over a high-lift trapezoidal wing. The viscous case includes a fully turbulent flow over the RAE 2822 rectangular wing. The multigrid solutions converged with 12%-33% of the Central Processing Unit (CPU) time required by the solutions obtained without multigrid. For all of the inviscid cases, multigrid in conjunction with an explicit time-stepping scheme performed the best with regard to the run time memory and CPU time requirements. However, for the viscous case multigrid had to be used with an implicit backward Euler time-stepping scheme that increased the run time memory requirement by 22% as compared to the run made without multigrid.
机译:集聚多网格方案已实施到NASA代码USM3Dns的顺序版本中,即以四面体单元为中心的有限体积Euler / Navier-Stokes流量求解器。已针对假设无粘性流的三种配置和假设粘性全湍流的一种配置评估了多网格增强型流量求解器的效率和鲁棒性。无形的研究包括在ONERA M6机翼上的跨音速流动和带有直升式机舱的普通公务机,在高升程梯形机翼上的低亚音速飞行。粘性外壳在RAE 2822矩形机翼上形成了完全湍流。多网格解决方案的收敛时间是不使用多网格解决方案所需的中央处理单元(CPU)时间的12%-33%。对于所有不可见的情况,在运行时内存和CPU时间要求方面,多网格结合明确的时间步进方案表现最佳。但是,对于粘性情况,必须将多网格与隐式后向Euler时间步进方案一起使用,与没有多网格的运行相比,该方案将运行时内存需求增加了22%。

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