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首页> 外文期刊>Journal of geophysical research. Planets >SilicateMelting and Vaporization During Rocky Planet Formation
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SilicateMelting and Vaporization During Rocky Planet Formation

机译:岩石行星形成期间的硅酸盐熔化和蒸发

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摘要

Collisions that induce melting and vaporization can have a substantial effect on the thermal and geochemical evolution of planets. However, the thermodynamics of major minerals are not well known at the extreme conditions attained during planet formation.We obtained new data at the Sandia Z Machine and use published thermodynamic data for the major mineral forsterite (Mg_2SiO_4) to calculate the specific entropy in the liquid region of the principal Hugoniot.We use our calculated specific entropy of shocked forsterite, and revised entropies for shocked silica, to determine the critical impact velocities for melting or vaporization upon decompression from the shocked state to 1 bar and the triple points, which are near the pressures of the solar nebula.We also demonstrate the importance of the initial temperature on the criteria for vaporization. Applying these results to N-body simulations of terrestrial planet formation, we find that up to 20% to 40% of the total system mass is processed through collisions with velocities that exceed the criteria for incipient vaporization at the triple point. Vaporizing collisions between small bodies are an important component of terrestrial planet formation.
机译:诱发熔化和汽化的冲突会对行星的热和地球化学演变产生重大影响。但是,在行星形成期间达到的极端条件下,主要矿物质的热力学并不众所周知。我们在Sandia Z机器上获得了新数据,并为主要的矿物脱石石(MG_2SIO_4)使用已发布的热力学数据来计算液体中的特定熵我们使用我们计算出的震惊的玻璃石的特定特定熵,并修订了震惊的二氧化硅的熵,以确定从震惊状态到1 bar和三重点减压后熔化或蒸发的关键影响速度,它们接近太阳星云的压力也证明了初始温度对汽化标准的重要性。将这些结果应用于陆地行星形成的N体模拟,我们发现,通过与速度超过三重点的速度相撞的碰撞来处理总系统质量的20%至40%。小体之间的蒸发碰撞是地球形成的重要组成部分。

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