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Multiscale Brittle-Ductile Coupling and Genesis of Slow Earthquakes

机译:慢震的多尺度脆性-韧性耦合和成因

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We present the first attempt to explain slow earthquakes as cascading thermal-mechanical instabilities. To attain this goal we investigate brittle-ductile coupled thermal-mechanical simulation on vastly different time scales. The largest scale model consists of a cross section of a randomly perturbed elasto-visco-plastic continental lithosphere on the order of 100 × 100 km scale with no other initial structures. The smallest scale model investigates a km-scale subsection of the large model and has a local resolution of 40 × 40 m. The model is subject to a constant extension velocity applied on either side. We assume a free top surface and with a zero tangential stress along the other boundaries. Extension is driven by velocity boundary conditions of 1 cm/a applied on either side of the model. This is the simplest boundary condition, and makes it an ideal starting point for understanding the behavior of a natural system with multiscale brittle-ductile coupling. Localization feedback is observed as faulting in the brittle upper crust and ductile shearing in an elasto-viscoplastic lower crust. In this process brittle faulting may rupture at seismogenic rates, e.g., at 102–103 ms−1, whereas viscous shear zones propagate at much slower rates, up to 3 × 10−9 ms−1. This sharp contrast in the strain rates leads to complex short-time-scale interactions at the brittle-ductile transition. We exploit the multiscale capabilities from our new simulations for understanding the underlying thermo-mechanics, spanning vastly different, time- and length-scales.
机译:我们提出了将慢地震解释为级联的热机械不稳定性的首次尝试。为了达到这个目标,我们研究了在截然不同的时标上的脆性-延性耦合热力学模拟。最大规模的模型由一个随机扰动的弹-粘塑性大陆岩石圈的横截面组成,规模为100×100 km,没有其他初始结构。最小比例模型研究大型模型的千米比例分段,其局部分辨率为40×40 m。该模型在两侧施加恒定的扩展速度。我们假定自由顶表面且沿其他边界的切向应力为零。扩展由施加在模型两侧的1 cm / a的速度边界条件驱动。这是最简单的边界条件,并且使其成为理解具有多尺度脆性-延性耦合的自然系统的行为的理想起点。在脆性上地壳断裂和弹黏塑性下地壳中的韧性剪切作用下观察到了局部反馈。在此过程中,脆性断层可能以地震发生速率破裂,例如在10 2 –10 3 ms -1 时破裂,而粘性剪切带在速度要慢得多,高达3×10 −9 ms -1 。应变率的这种鲜明对比导致了脆性-延性转变时复杂的短时尺度相互作用。我们利用新仿真中的多尺度功能来理解基本的热力学,涵盖了截然不同的时间尺度和长度尺度。

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