Influence of water on the thermoelastic properties of Fe bearing ringwoodite: A first-principles study

IF 2.4 3区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS
Rabindranath Mondal, Gaurav Shukla, Swastika Chatterjee
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Abstract

Using first-principles density functional theory (DFT), we model the thermoelastic properties of hydrated ringwoodite (γ-(Fe, Mg)2SiO4), a potential water reservoir in the Earth's mantle transition zone (MTZ). Our calculations indicate that hydration, in general, leads to a reduction in the sound wave velocity of ringwoodite. However, increased pressure tends to suppress this reduction. For our 1.56 wt% H2O containing ringwoodite model, we find that the suppression is so large that at pressure and temperature (P-T) conditions relevant to the lower part of the MTZ the sound wave velocities for the hydrous (1.56 wt% H2O) ringwoodite become very similar to that of the anhydrous ringwoodite. However, when the water concentration is increased to 3.3 wt%, the pressure-induced suppression of the velocity reduction due to hydration is not so significant. We have given a plausible explanation for the same on the basis of the electronic structure of the hydrous ringwoodite models. We conclude that in the lower part of the MTZ, seismic wave data is sufficiently robust to detect regions of very high-water content (∼3.3 wt%). However, if the water concentration is less than 1.56 wt%, sound wave velocities may not be able to precisely detect the state of hydration of the MTZ.

Abstract Image

水对含铁菱镁矿热弹性特性的影响:第一原理研究
我们利用第一原理密度泛函理论(DFT)模拟了水合菱镁矿(γ-(Fe, Mg)2SiO4)的热弹性特性,菱镁矿是地球地幔过渡带(MTZ)中的一个潜在储水层。我们的计算表明,水化一般会导致环纹石的声波速度降低。然而,压力的增加往往会抑制这种降低。对于我们的含 1.56 wt% H2O 的菱镁矿模型,我们发现这种抑制作用非常大,以至于在与 MTZ 下部相关的压力和温度 (P-T) 条件下,水合(1.56 wt% H2O)菱镁矿的声波速度与无水菱镁矿的声波速度非常相似。然而,当水的浓度增加到 3.3 wt% 时,压力对水合造成的速度降低的抑制作用就不那么明显了。我们根据水合菱镁矿模型的电子结构对此给出了合理的解释。我们的结论是,在 MTZ 的下部,地震波数据足以探测到含水量非常高(3.3 wt%)的区域。然而,如果含水量低于 1.56 wt%,声波速度可能无法精确探测 MTZ 的水化状态。
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来源期刊
Physics of the Earth and Planetary Interiors
Physics of the Earth and Planetary Interiors 地学天文-地球化学与地球物理
CiteScore
5.00
自引率
4.30%
发文量
78
审稿时长
18.5 weeks
期刊介绍: Launched in 1968 to fill the need for an international journal in the field of planetary physics, geodesy and geophysics, Physics of the Earth and Planetary Interiors has now grown to become important reading matter for all geophysicists. It is the only journal to be entirely devoted to the physical and chemical processes of planetary interiors. Original research papers, review articles, short communications and book reviews are all published on a regular basis; and from time to time special issues of the journal are devoted to the publication of the proceedings of symposia and congresses which the editors feel will be of particular interest to the reader.
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