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Pure climb creep mechanism drives flow in Earth’s lower mantle

机译:纯粹的爬升蠕变机制驱动地球下地幔中的流动

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At high pressure prevailing in the lower mantle, lattice friction opposed to dislocation glide becomes very high, as reported in recent experimental and theoretical studies. We examine the consequences of this high resistance to plastic shear exhibited by ringwoodite and bridgmanite on creep mechanisms under mantle conditions. To evaluate the consequences of this effect, we model dislocation creep by dislocation dynamics. The calculation yields to an original dominant creep behavior for lower mantle silicates where strain is produced by dislocation climb, which is very different from what can be activated under high stresses under laboratory conditions. This mechanism, named pure climb creep, is grain-size–insensitive and produces no crystal preferred orientation. In comparison to the previous considered diffusion creep mechanism, it is also a more efficient strain-producing mechanism for grain sizes larger than ca. 0.1 mm. The specificities of pure climb creep well match the seismic anisotropy observed of Earth’s lower mantle.
机译:在最近的实验和理论研究中,在下地幔普遍存在的高压下,与位错滑移相对的晶格摩擦变得非常高。我们研究了在地幔条件下,林伍德石和水辉石对蠕变机理表现出的高抗塑性剪切能力的后果。为了评估这种效应的后果,我们通过位错动力学对位错蠕变进行建模。计算得出低位幔硅酸盐的原始显性蠕变行为,其中位错爬升产生应变,这与实验室条件下在高应力下可以激活的应变有很大不同。这种机制称为纯爬升蠕变,对晶粒尺寸不敏感,并且不会产生晶体首选的取向。与先前考虑的扩散蠕变机理相比,对于粒径大于ca的晶粒,它也是一种更有效的应变产生机理。 0.1毫米纯粹的爬升蠕变特性与地球下地幔观测到的地震各向异性非常吻合。

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