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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 >Experimental constraints on melting temperatures in the MgO-SiO2 system at lower mantle pressures
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Experimental constraints on melting temperatures in the MgO-SiO2 system at lower mantle pressures

机译:较低地幔压力下MgO-SiO2系统熔化温度的实验约束

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Eutectic melting curves in the system MgO-SiO2 have been experimentally determined at lower mantle pressures using laser-heated diamond anvil cell (LH-DAC) techniques. We investigated eutectic melting of bridgmanite plus periclase in the MgO-MgSiO3 binary, and melting of bridgmanite plus stishovite in the MgSiO3-SiO2 binary, as analogues for natural peridotite and basalt, respectively. The melting curve of model basalt occurs at lower temperatures, has a shallower dT/dP slope and slightly less curvature than the model peridotitic melting curve. Overall, melting temperatures detected in this study are in good agreement with previous experiments and ab initio simulations at similar to 25 GPa (Liebske and Frost, 2012; de Koker et al., 2013). However, at higher pressures the measured eutectic melting curves are systematically lower in temperature than curves extrapolated on the basis of thermodynamic modelling of low-pressure experimental data, and those calculated from atomistic simulations. We find that our data are inconsistent with previously computed melting temperatures and melt thermodynamic properties of the SiO2 endmember, and indicate a maximum in short-range ordering in MgO-SiO2 melts close to Mg2SiO4 composition. The curvature of the model peridotite eutectic relative to an MgSiO3 melt adiabat indicates that crystallization in a global magma ocean would begin at similar to 100 GPa rather than at the bottom of the mantle, allowing for an early basal melt layer. The model peridotite melting curve lies similar to 500 K above the mantle geotherm at the core-mantle boundary, indicating that it will not be molten unless the addition of other components reduces the solidus sufficiently. The model basalt melting curve intersects the geotherm at the base of the mantle, and partial melting of subducted oceanic crust is expected. (C) 2017 Elsevier B.V. All rights reserved.
机译:使用激光加热的金刚石砧座(LH-DAC)技术,在较低的裂缝压力下通过实验确定了系统MgO-SiO 2中的共晶熔化曲线。我们研究了Bridgmanite Plus Periclase在MgO-Mgsio3二元中的共晶熔化,以及麦芽偕伊斯特在MgSiO3-SiO2二进制中熔化,分别是用于天然橄榄石和玄武岩的类似物。模型玄武岩的熔化曲线发生在较低温度下,具有较浅的DT / DP斜率,略微较低的曲率比斜质熔化曲线。总的来说,本研究中检测到的熔化温度与之前的实验和AB Initio模拟类似于25 GPA(Liebske和Frost,2012; De Koker等,2013)。然而,在更高的压力下,测量的共晶熔化曲线在基于低压实验数据的热力学建模的基础上的温度下系统地较低,以及由原子模拟计算的曲线。我们发现,我们的数据与先前计算的熔化温度和SiO2 Endmember的熔体热力学性能不一致,并在MgO-SiO 2中的短距离排序中的最大值,接近Mg2SiO4组合物。相对于MgSiO3熔体Adabat的恒星恒星恒星的曲率表明,全球岩浆海洋中的结晶将从类似于100 GPA而不是在地幔的底部开始,允许早期基底熔体层。椭圆形熔化曲线的模型熔化曲线在核心 - 地幔边界处的地幔地热方面类似于500k,表明除非添加其他组分充分降低固体,否则不会熔融。模型玄武岩熔化曲线在地幔底部与地热处理地热,预期底层海底的部分熔化。 (c)2017年Elsevier B.V.保留所有权利。

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