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Mapping the evolving strain field during continental breakup from crustal anisotropy in the Afar Depression

机译:绘制阿法尔凹陷地壳各向异性造成大陆破裂过程中的应变场图

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摘要

Rifting of the continents leading to plate rupture occurs by a combination of mechanical deformation and magma intrusion, yet the spatial and temporal scales over which these alternate mechanisms localize extensional strain remain controversial. Here we quantify anisotropy of the upper crust across the volcanically active Afar Triple Junction using shear-wave splitting from local earthquakes to evaluate the distribution and orientation of strain in a region of continental breakup. The pattern of S-wave splitting in Afar is best explained by anisotropy from deformation-related structures, with the dramatic change in splitting parameters into the rift axis from the increased density of dyke-induced faulting combined with a contribution from oriented melt pockets near volcanic centres. The lack of rift-perpendicular anisotropy in the lithosphere, and corroborating geoscientific evidence of extension dominated by dyking, provide strong evidence that magma intrusion achieves the majority of plate opening in this zone of incipient plate rupture.
机译:导致板块破裂的大陆裂谷是机械变形和岩浆侵入共同作用的结果,但这些替代机制在局部位置上拉伸应变的时空尺度仍然存在争议。在这里,我们使用局部地震的剪切波分裂来量化火山活动远方三重交界处上地壳的各向异性,以评估大陆破裂区域中应变的分布和方向。阿法尔(Afar)的S波分裂模式最好用与变形有关的结构的各向异性来解释,裂变参数在裂谷轴上的急剧变化是由于堤坝诱发的断层密度的增加,再加上来自火山附近定向熔体的贡献中心。岩石圈中缺乏裂谷垂直的各向异性,并证实了以堤坝为主的伸展的地球科学证据,提供了强有力的证据,表明岩浆侵入在该板块的初始破裂区域中获得了大部分板块的打开。

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