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Seismic anisotropy reveals crustal flow driven by mantle vertical loading in the Pacific NW

机译:地震各向异性揭示了太平洋地幔垂直装载驱动的地壳流动

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摘要

Buoyancy anomalies within Earth’s mantle create large convective currents that are thought to control the evolution of the lithosphere. While tectonic plate motions provide evidence for this relation, the mechanism by which mantle processes influence near-surface tectonics remains elusive. Here, we present an azimuthal anisotropy model for the Pacific Northwest crust that strongly correlates with high-velocity structures in the underlying mantle but shows no association with the regional mantle flow field. We suggest that the crustal anisotropy is decoupled from horizontal basal tractions and, instead, created by upper mantle vertical loading, which generates pressure gradients that drive channelized flow in the mid-lower crust. We then demonstrate the interplay between mantle heterogeneities and lithosphere dynamics by predicting the viscous crustal flow that is driven by local buoyancy sources within the upper mantle. Our findings reveal how mantle vertical load distribution can actively control crustal deformation on a scale of several hundred kilometers.
机译:地球地幔中的浮力异常会产生巨大的对流电流,认为控制岩石圈的演变。虽然构造板运动为这一关系提供了证据,但是地幔过程影响近地表构造的机制仍然难以捉摸。在这里,我们为太平洋西北地壳提出了方形的各向异性模型,与底层地幔中的高速结构强烈相关,但没有与区域地幔流场的关系。我们认为地壳各向异性由水平基础诉讼分离,而是由上部地幔垂直装载产生的,该垂直负载产生,该垂直负载产生压力梯度,该压力梯度驱动中下地壳中的通道流动。然后,我们通过预测由上部地幔内的局部浮力源驱动的粘性地壳流动来展示地幔异质性和岩石圈动态之间的相互作用。我们的研究结果揭示了Mantle垂直载荷分布如何在数百公里的等级上积极控制地壳变形。

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