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首页> 外文期刊>Journal of Scientific Computing >Simulation of Dynamic Earthquake Ruptures in Complex Geometries Using High-Order Finite Difference Methods
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Simulation of Dynamic Earthquake Ruptures in Complex Geometries Using High-Order Finite Difference Methods

机译:使用高阶有限差分方法模拟复杂几何形状中的动态地震破裂

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摘要

We develop a stable and high-order accurate finite difference method for problems in earthquake rupture dynamics in complex geometries with multiple faults. The bulk material is an isotropic elastic solid cut by pre-existing fault interfaces that accommodate relative motion of the material on the two sides. The fields across the interfaces are related through friction laws which depend on the sliding velocity, tractions acting on the interface, and state variables which evolve according to ordinary differential equations involving local fields. The method is based on summation-by-parts finite difference operators with irregular geometries handled through coordinate transforms and multi-block meshes. Boundary conditions as well as block interface conditions (whether frictional or otherwise) are enforced weakly through the simultaneous approximation term method, resulting in a provably stable discretization. The theoretical accuracy and stability results are confirmed with the method of manufactured solutions. The practical benefits of the new methodology are illustrated in a simulation of a subduction zone megathrust earthquake, a challenging application problem involving complex free-surface topography, nonplanar faults, and varying material properties.
机译:针对具有多个断层的复杂几何形状中的地震破裂动力学问题,我们开发了一种稳定的高阶精确有限差分方法。散装材料是各向同性的弹性固体,由预先存在的断层界面切割而成,这些断层界面可容纳材料在两侧的相对运动。跨界面的场是通过摩擦定律关联的,摩擦定律取决于滑动速度,作用在界面上的牵引力以及根据涉及局部场的常微分方程演化的状态变量。该方法基于通过坐标变换和多块网格处理的具有不规则几何形状的部分求和有限差分算子。通过同时逼近项法,边界条件以及块界面条件(无论是摩擦条件还是其他条件)都难以实现,从而导致可证明的稳定离散化。理论精度和稳定性结果可以通过制造溶液的方法得到证实。新方法的实际好处在俯冲带特大推力地震的模拟中得到了说明,这是一个具有挑战性的应用问题,涉及复杂的自由表面形貌,非平面断层和变化的材料特性。

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