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The effect of energy feedbacks on continental strength

机译:能量反馈对大陆强度的影响

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The classical strength profile of continents(1,2) is derived from a quasi-static view of their rheological response to stress-one that does not consider dynamic interactions between brittle and ductile layers. Such interactions result in complexities of failure in the brittle-ductile transition and the need to couple energy to understand strain localization. Here we investigate continental deformation by solving the fully coupled energy, momentum and continuum equations. We show that this approach produces unexpected feedback processes, leading to a significantly weaker dynamic strength evolution. In our model, stress localization focused on the brittle-ductile transition leads to the spontaneous development of mid-crustal detachment faults immediately above the strongest crustal layer. We also find that an additional decoupling layer forms between the lower crust and mantle. Our results explain the development of decoupling layers that are observed to accommodate hundreds of kilometres of horizontal motions during continental deformation.
机译:大陆(1,2)的经典强度曲线是从它们对应力的流变响应的准静态观点得出的,该观点不考虑脆性和延性层之间的动态相互作用。这种相互作用导致脆性-韧性转变失败的复杂性,并且需要耦合能量来理解应变局部化。在这里,我们通过求解完全耦合的能量,动量和连续体方程来研究大陆变形。我们证明了这种方法会产生意想不到的反馈过程,从而导致动态强度演变明显变弱。在我们的模型中,应力集中在脆性-韧性转变上导致了刚好在最强地壳层上方的中地壳分离断层的自发发展。我们还发现在下地壳和地幔之间形成了一个额外的去耦层。我们的结果解释了去耦层的发展,这些去耦层在大陆变形期间可容纳数百公里的水平运动。

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