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A study of the accuracy and stability of high-order compact difference methods for computational aeroacoustics.

机译:用于计算航空声学的高阶紧致差分方法的准确性和稳定性的研究。

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A study of the accuracy of compact difference operators is undertaken to determine the savings realized by use of high-order pentadiagonal difference operators for the numerical solution of selected multi-dimensional problems in aeroacoustics. The use of Low-Dissipation and Low-Dispersion Runge-Kutta (LDDRK) integration is also advocated to minimize numerical error for a given step size.; A combined stability analysis for spatial discretization using the compact difference operator and the alternating-step LDDRK integration scheme is presented for the one-dimensional linear convection equation and periodic boundary conditions.; PML boundary conditions for absorbing acoustic and vortical waves normal to the computational domain are implemented here. A linear stability analysis is used in the PML zones to determine optimal values of the damping coefficient to minimize growth instabilities that are inherent to the PML equations for mean flow normal to the PML boundaries.; For the 3-D case, use of the pentadiagonal compact scheme resulted in a 53% reduction in the spatial grid requirement (and associated memory space) compared to the tridiagonal scheme. The decrease in actual computational time is 27% by using CD05/10 compared to CDO3/8 for the same level of solution accuracy. These reductions are in addition to the 50% savings in CPU time achieved by adopting the LDDRK5/6 time-integration as opposed to traditional fourth-order Runge-Kutta integration.
机译:对紧凑型差分算子的精度进行了研究,以确定通过使用高阶五对角差分算子对航空声学中选定的多维问题进行数值求解而实现的节省。还提倡使用低耗散和低耗散Runge-Kutta(LDDRK)集成,以在给定步长的情况下最大程度地减少数值误差。针对一维线性对流方程和周期边界条件,提出了利用紧致差分算子和交替步长LDDRK积分方案进行空间离散化的组合稳定性分析。此处实现了用于吸收垂直于计算域的声波和涡旋波的PML边界条件。在PML区域中使用线性稳定性分析来确定阻尼系数的最佳值,以最小化垂直于PML边界的平均流量的PML公式固有的生长不稳定性。对于3-D情况,与三对角线方案相比,使用五对角线紧凑方案可减少53%的空间网格需求(以及相关的存储空间)。与CDO3 / 8相比,使用CD05 / 10可以在相同水平的求解精度下减少27%的实际计算时间。这些减少是采用LDDRK5 / 6时间集成(与传统的四阶Runge-Kutta集成相比)节省了50%的CPU时间的补充。

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