首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >Evidence for {100} 011 slip in ferropericlase in from high-pressure/high-temperature experiments Earth's lower mantle
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Evidence for {100} 011 slip in ferropericlase in from high-pressure/high-temperature experiments Earth's lower mantle

机译:{100}&的证据 011& 从高压/高温实验地球的较低的地幔中滑入铁陶瓷酶

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Seismic anisotropy in Earth's lowermost mantle, resulting from Crystallographic Preferred Orientation (CPO) of elastically anisotropic minerals, is among the most promising observables to map mantle flow patterns. A quantitative interpretation, however, is hampered by the limited understanding of CPO development in lower mantle minerals at simultaneously high pressures and temperatures. Here, we experimentally determine CPO formation in ferropericlase, one of the elastically most anisotropic deep mantle phases, at pressures of the lower mantle and temperatures of up to 1400 K using a novel experimental setup. Our data reveal a significant contribution of slip on (100) to ferropericlase CPO in the deep lower mantle, contradicting previous inferences based on experimental work at lower mantle pressures but room temperature. We use our results along with a geodynamic model to show that deformed ferropericlase produces strong shear wave anisotropy in the lowermost mantle, where horizontally polarized shear waves are faster than vertically polarized shear waves, consistent with seismic observations. We find that ferropericlase alone can produce the observed seismic shear wave splitting in D" in regions of downwelling, which may be further enhanced by post-perovskite. Our model further shows that the interplay between ferropericlase (causing VSH Vsv) and bridgmanite (causing Vsv VSH) CPO can produce a more complex anisotropy patterns as observed in regions of upwelling at the margin of the African Large Low Shear Velocity Province. (C) 2018 Elsevier B.V. All rights reserved.
机译:由弹性各向异性矿物质的晶体优选取向(CPO)产生的地球最低地幔中的地震各向异性是映射地幔流动模式的最有前途的可观察。然而,通过在同时高压和温度下,通过对较低的地幔矿物质的对CPO发育有限的了解,定量解释是阻碍的。在这里,我们通过新的实验设置,通过实验地确定铁合作用液中的CPO形成,其中一个弹性最各向异性的深层幔相,在较低的地幔和高达1400k的温度的压力下。我们的数据揭示了SLIP对(100)在深层地幔中对铁锰酶CPO的显着贡献,基于实验工作的先前推断在较低的露地压力下,但是室温。我们使用我们的结果以及地球动力学模型来表明变形的铁铁酶在最下面地幔中产生强的剪切波各向异性,其中水平偏振剪切波比垂直偏振剪切波更快,与地震观察一致。我们发现单独的铁红晶化酶可以在休眠区域中产生D“中的观察到的地震剪切波分裂,这可以通过后钙钛矿进一步增强。我们的模型进一步表明,铁陶瓷酶(导致VSH> VSV)之间的相互作用和Bridgmanite(导致VSV& vsh)CPO可以在非洲大型低剪切速度省份的裕度地区观察到更复杂的各向异性模式。(c)2018年Elsevier BV保留所有权利。

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