Dynamic rupture modeling in a complex fault zone with distributed and localized damage

IF 3.4 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Mechanics of Materials Pub Date : 2024-08-28 DOI:10.1016/j.mechmat.2024.105139
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Abstract

Active fault zones have complex structural and geometric features that are expected to affect earthquake nucleation, rupture propagation with shear and volumetric deformation, and arrest. Earthquakes, in turn, dynamically activate co-seismic off-fault damage that may be both distributed and localized, affecting fault zone geometry and rheology, and further influencing post-seismic deformation and subsequent earthquake sequences. Understanding this co-evolution of fault zones and earthquakes is a fundamental challenge in computational rupture dynamics with consequential implications for earthquake physics, seismic hazard and risk. Here, we implement a continuum damage-breakage (CDB) rheology model in our MOOSE-FARMS dynamic rupture simulator to investigate the interplay between bulk damage and fault motion on the evolution of dynamic rupture, energy partitioning, and ground motion characteristics. We demonstrate several effects of damage (accounting for distributed cracking) and breakage (accounting for granulation) on rupture dynamics in the context of two prototype problems addressed currently in the 2D plane-strain setting: (1) a single planar fault and (2) a fracture network. We quantify the spatio-temporal reduction in wave speeds associated with dynamic ruptures in each of these cases and track the evolution of the original fault zone geometry. The results highlight the growth and coalescence of localization bands as well as competition between localized slip on the pre-existing faults vs. inelastic deformation in the bulk. We analyze the differences between off-fault dissipation through damage-breakage vs. plasticity and show that damage-induced softening increases the slip and slip rate, suggesting enhanced energy radiation and reduced energy dissipation. These results have important implications for long-standing problems in earthquake and fault physics as well as near-fault seismic hazard, and they motivate continuing towards 3D simulations and detailed near-fault observations to uncover the processes occurring in earthquake rupture zones.

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具有分布式和局部破坏的复杂断层带的动态破裂模型
活动断层带具有复杂的结构和几何特征,预计会影响地震成核、断裂传播、剪切和体积变形以及停震。反过来,地震也会动态激活断层外的共震破坏,这种破坏可能是分布式的,也可能是局部的,从而影响断层带的几何和流变,并进一步影响震后变形和随后的地震序列。理解断层带和地震的这种共同演化是计算破裂动力学的一项基本挑战,对地震物理学、地震灾害和风险具有重要影响。在此,我们在 MOOSE-FARMS 动态破裂模拟器中实施了连续损伤-破裂(CDB)流变模型,以研究块体损伤和断层运动对动态破裂演化、能量分配和地动特征的相互作用。我们以目前在二维平面应变环境下处理的两个原型问题为背景,展示了损伤(考虑分布式开裂)和断裂(考虑粒化)对破裂动力学的几种影响:(1) 单一平面断层和 (2) 断裂网络。我们量化了每种情况下与动态断裂相关的波速时空降低情况,并跟踪了原始断层带几何形状的演变。结果凸显了局部化带的增长和凝聚,以及原有断层上的局部滑动与主体非弹性变形之间的竞争。我们分析了通过破坏-断裂与塑性进行断层外耗散之间的差异,结果表明破坏引起的软化增加了滑移和滑移率,表明能量辐射增强,能量耗散减少。这些结果对地震和断层物理学中长期存在的问题以及近断层地震危险具有重要意义,并促使我们继续进行三维模拟和详细的近断层观测,以揭示地震破裂带的发生过程。
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来源期刊
Mechanics of Materials
Mechanics of Materials 工程技术-材料科学:综合
CiteScore
7.60
自引率
5.10%
发文量
243
审稿时长
46 days
期刊介绍: Mechanics of Materials is a forum for original scientific research on the flow, fracture, and general constitutive behavior of geophysical, geotechnical and technological materials, with balanced coverage of advanced technological and natural materials, with balanced coverage of theoretical, experimental, and field investigations. Of special concern are macroscopic predictions based on microscopic models, identification of microscopic structures from limited overall macroscopic data, experimental and field results that lead to fundamental understanding of the behavior of materials, and coordinated experimental and analytical investigations that culminate in theories with predictive quality.
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