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Domain Decomposition Technique for Solution of Acoustic Wave Scattering

机译:声波散射解的域分解技术

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摘要

A novel domain decomposition technique is applied that couples nonlinear and linear Euler solvers to model acoustic scattering of waves in the vicinity of high-velocity gradients and large-amplitude waves to reduce numerical resources. The linear solver is applied in domains in which the wave amplitude is small and linearization is applicable, whereas the nonlinear solver is used in the vicinity of high wave amplitudes and stagnation points. Three numerical models are compared in this paper: 1) a linear Euler, 2) a nonlinear Euler, and 3) the domain decomposition technique. For all three models, the finite difference dispersion relation preserving scheme is applied to all spatial derivatives and the low-dissipation-dispersion Runge-Kutta scheme is applied for the temporal integration. A perfectly matched layer is applied at the edges of the computational domain to absorb outgoing waves and minimize reflections. To include complex bodies and geometries, an overset mesh is applied. After model validation, the technique is applied to the acoustic scattering of a pulse and a periodic source from a circular cylinder in flow. The results conclude that a thin zone around a complex body is sufficient to accurately account for nonlinear effects in the vicinity of stagnation points and that the domain decomposition technique accurately predicts both the unsteady field and integral unsteady forces about bluff bodies compared with full nonlinear simulations. The results suggest that there is a 40% reduction in computational time using the domain decomposition technique compared with full nonlinear calculations.
机译:应用了一种新颖的域分解技术,该技术将非线性和线性Euler求解器耦合在一起,以对高速梯度和大振幅波附近的波的声散射进行建模,以减少数值资源。线性求解器适用于波幅较小且可线性化的领域,而非线性求解器则用于高波幅和停滞点附近。本文比较了三种数值模型:1)线性欧拉,2)非线性欧拉和3)域分解技术。对于所有三个模型,将有限差分色散关系保留方案应用于所有空间导数,并将低耗散色散Runge-Kutta方案应用于时间积分。完美匹配的层应用于计算域的边缘,以吸收出射波并使反射最小化。为了包括复杂的物体和几何形状,将应用覆盖网格。在模型验证之后,该技术将应用于来自圆柱体的脉冲和周期性声源的声散射。结果得出结论,复杂物体周围的薄区域足以准确地解释滞止点附近的非线性效应,并且与完全非线性模拟相比,域分解技术可以准确地预测钝体的非稳态场和积分非稳态力。结果表明,与完全非线性计算相比,使用域分解技术可将计算时间减少40%。

著录项

  • 来源
    《AIAA Journal》 |2014年第2期|408-418|共11页
  • 作者单位

    Cairo University, Giza 12316, Egypt;

    Cairo University, Giza 12316, Egypt;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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