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Thermoelastic properties of MgSiO3-majorite at high temperatures and pressures: A first principles study

机译:高温和压力下MgSiO3-Mignite的热弹性性能:第一个原理研究

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As the major component of garnet, the second most abundant phase in Earth's transition zone, MgSiO3-majorite plays a fundamental role in controlling the state and dynamics of Earth's mantle. However, due to challenges of experiments and simulations, there are still very limited data on the elastic properties of MgSiO3-majorite at simultaneously high temperatures and pressures. In this study, we have carried out extensive first principles calculations to determine the thermoelastic properties of MgSiO3-majorite up to 2000 K and 40 GPa. We find that the elastic constants of MgSiO3-majorite change significantly over the temperature and pressure range studied, with noticeable non-linearities in their pressure dependences. The seismic anisotropy of MgSiO3-majorite is high and generally increases with pressure. It is much higher than that of the other end-members of garnet and ringwoodite, which makes it the most anisotropic mineral in assemblages expected in the lower transition zone. Based on our calculated elastic moduli and with careful elimination of systematic errors, we establish a third-order Birch-Murnaghan-Mie-Gruneisen model for MgSiO3-majorite with the parameters: V-0 = 114.1 cm(3)/mol, K-0 = 163.6 GPa, G(0) = 86.4 GPa, K-0' = 4.44, G(0)' = 1.16, gamma(0) = 1.08, q(0) = 0.48, eta(S0) = 0.76, and theta(0) = 822.5 K. Integrating our results into a thermodynamic model able to predict the properties of mantle assemblages, we find that a pyrolite composition produces velocities that agree with the seismic model AK135 in the upper transition zone. In the lower transition zone, a pyrolite composition fits well with some specific local observations, but a mechanical mixture with 18% basalt and 82% harzburgite is in better agreement with the global seismic model PREM. The much larger abundance of MgSiO3-majorite in the garnet phase of harzburgite suggests that the anisotropy in the lower transition zone may not be negligible and would be observable at least in the heterogeneous zones near subducting slabs.
机译:作为石榴石的主要成分,地球过渡区的第二个最丰富的阶段,Mgsio3-Manifalite在控制地球地幔的状态和动态方面发挥着重要作用。然而,由于实验和模拟的挑战,在同时高温和压力下,MgSiO3-Mignite的弹性性能仍然存在非常有限的数据。在这项研究中,我们已经进行了广泛的第一原理计算,以确定MgsiO3-Mignite的热弹性,高达2000 k和40gPa。我们发现MGSIO3-Mignite的弹性常数在研究的温度和压力范围内显着变化,其压力依赖性具有明显的非线性。 MgSiO3-Mignite的地震各向异性高,并且通常随压而增加。它远高于石榴石和英国石材的另一端成员,这使得在较低过渡区中的组装中最重要的矿物质。基于我们计算的弹性模量和仔细消除系统误差,我们为MGSIO3-Mignite建立了三阶Birch-Murnagan-Mie-Gruneisen模型,参数:V-0 = 114.1cm(3)/ mol,K- 0 = 163.6 gpa,g(0)= 86.4 gpa,k-0'= 4.44,g(0)'= 1.16,伽马(0)= 1.08,q(0)= 0.48,ETa(S0)= 0.76, θ(0)= 822.5 K.将我们的结果集成到能够预测地幔组合的性质的热力学模型中,我们发现吡塔组合物产生与上过渡区中的地震模型Ak135同意的速度。在较低的过渡区中,吡钛矿组合物与某些特定的局部观察,但具有18%玄武岩和82%Harzburgite的机械混合物与全球地震模型Prem更好。 Harzburgite的石榴石阶段中的较大的MgSiO3-Mignite大幅增加表明较低过渡区的各向异性可能不可忽略不计,并且至少在底板底板附近的异质区域中可观察到。

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