【2h】

Toward a mineral physics reference model for the Moon’s core

机译:建立月球核心的矿物物理参考模型

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摘要

The physical properties of iron (Fe) at high pressure and high temperature are crucial for understanding the chemical composition, evolution, and dynamics of planetary interiors. Indeed, the inner structures of the telluric planets all share a similar layered nature: a central metallic core composed mostly of iron, surrounded by a silicate mantle, and a thin, chemically differentiated crust. To date, most studies of iron have focused on the hexagonal closed packed (hcp, or ε) phase, as ε-Fe is likely stable across the pressure and temperature conditions of Earth’s core. However, at the more moderate pressures characteristic of the cores of smaller planetary bodies, such as the Moon, Mercury, or Mars, iron takes on a face-centered cubic (fcc, or γ) structure. Here we present compressional and shear wave sound velocity and density measurements of γ-Fe at high pressures and high temperatures, which are needed to develop accurate seismic models of planetary interiors. Our results indicate that the seismic velocities proposed for the Moon’s inner core by a recent reanalysis of Apollo seismic data are well below those of γ-Fe. Our dataset thus provides strong constraints to seismic models of the lunar core and cores of small telluric planets. This allows us to propose a direct compositional and velocity model for the Moon’s core.
机译:铁(Fe)在高压和高温下的物理特性对于理解行星内部的化学组成,演化和动力学至关重要。确实,碲化行星的内部结构都具有相似的分层性质:中央金属核主要由铁组成,被硅酸盐地幔包围,并且具有稀薄的化学成分。迄今为止,大多数铁研究都集中在六方密堆积(hcp或ε)相上,因为ε-Fe可能在地球核心的压力和温度条件下稳定。但是,在较小的行星体(如月球,水星或火星)的核具有较适度的压力特征时,铁呈现出面心立方(fcc或γ)结构。在这里,我们介绍了在高温高压下γ-Fe的压缩波和剪切波声速以及密度的测量结果,这对于建立行星内部的精确地震模型是必需的。我们的结果表明,根据最近对阿波罗地震数据的重新分析,为月球内核提出的地震速度远低于γ-Fe地震速度。因此,我们的数据集对月球核和小碲行星的核的地震模型提供了强大的约束。这使我们能够为月球核心提出直接的成分和速度模型。

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