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Reaction-induced rheological weakening enables oceanic plate subduction

机译:反应引起的流变性减弱使洋板俯冲

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摘要

Earth is the only terrestrial planet in our solar system where an oceanic plate subducts beneath an overriding plate. Although the initiation of plate subduction requires extremely weak boundaries between strong plates, the way in which oceanic mantle rheologically weakens remains unknown. Here we show that shear-enhanced hydration reactions contribute to the generation and maintenance of weak mantle shear zones at mid-lithospheric depths. High-pressure friction experiments on peridotite gouge reveal that in the presence of hydrothermal water, increasing strain and reactions lead to an order-of-magnitude reduction in strength. The rate of deformation is controlled by pressure-solution-accommodated frictional sliding on weak hydrous phyllosilicate (talc), providing a mechanism for the ‘cutoff' of the high peak strength at the brittle-plastic transition. Our findings suggest that infiltration of seawater into transform faults with long lengths and low slip rates is an important controlling factor on the initiation of plate tectonics on terrestrial planets.
机译:地球是我们太阳系中唯一的地球行星,在该行星中,一个洋洋板块俯冲到了一个上覆板块之下。尽管板块俯冲的开始要求强板块之间的边界非常薄弱,但是海洋地幔流变学减弱的方式仍然未知。在这里,我们表明,剪切增强的水合反应有助于在中圈圈深处弱地幔剪切带的产生和维持。在橄榄岩泥上的高压摩擦实验表明,在存在热水的情况下,应变和反应的增加导致强度降低了一个数量级。变形速率由在弱含水页硅酸盐(滑石粉)上的压力-溶液适应性摩擦滑动控制,从而为脆性塑料转变过程中高峰值强度的“截止”提供了一种机制。我们的发现表明,海水渗透到长而低滑移率的转换断层中是在地球行星上板块构造开始的重要控制因素。

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