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The spectral cell method in nonlinear earthquake modeling

机译:非线性地震建模中的光谱单元方法

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This study examines the applicability of the spectral cell method (SCM) to compute the nonlinear earthquake response of complex basins. SCM combines fictitious-domain concepts with the spectral-version of the finite element method to solve the wave equations in heterogeneous geophysical domains. Nonlinear behavior is considered by implementing the Mohr-Coulomb and Drucker-Prager yielding criteria. We illustrate the performance of SCM with numerical examples of nonlinear basins exhibiting physically and computationally challenging conditions. The numerical experiments are benchmarked with results from overkill solutions, and using MIDAS GTS NX, a finite element software for geotechnical applications. Our findings show good agreement between the two sets of results. Traditional spectral elements implementations allow points per wavelength as low as PPW = 4.5 for high-order polynomials. Our findings show that in the presence of nonlinearity, high-order polynomials (p >= 3) require mesh resolutions above of >= 10 to ensure displacement errors below 10.
机译:本研究验证了光谱单元法(SCM)在计算复杂流域非线性地震响应中的适用性。SCM将虚构域概念与有限元方法的谱版本相结合,以求解非均质地球物理域中的波动方程。通过实现 Mohr-Coulomb 和 Drucker-Prager 屈服准则来考虑非线性行为。我们通过非线性盆地的数值示例来说明SCM的性能,这些盆地表现出物理和计算上具有挑战性的条件。数值实验以过度杀伤解决方案的结果为基准,并使用 MIDAS GTS NX(一种用于岩土工程应用的有限元软件)。我们的研究结果显示两组结果之间有很好的一致性。对于高阶多项式,传统的光谱单元实现允许每个波长的点数低至 PPW = 4.5。我们的研究结果表明,在存在非线性的情况下,高阶多项式 (p >= 3) 需要高于 >= 10 的网格分辨率,以确保位移误差低于 10%。

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