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Effects of basin-forming impacts on the thermal evolution and magnetic field of Mars

机译:盆地成形影响对火星热进化和磁场的影响

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摘要

The youngest of the giant impact basins on Mars are either weakly magnetized or completely demagnetized, indicating that a global magnetic field was not present at the time those basins formed. Eight basins are sufficiently large that the impact heating associated with their formation could have penetrated below the core-mantle boundary (CMB). Here we investigate the thermal evolution of the martian interior and the fate of the global magnetic field using 3D mantle convection models coupled to a parameterized 1D core thermal evolution model. We find that the survival of the impact-induced temperature anomalies in the upper mantle is strongly controlled by the mantle viscosity. Impact heating from subsequent impacts can accumulate in stiffer mantles faster than it can be advected away, resulting in a thermal blanket that insulates an entire hemisphere. The impact heating in the core will halt dynamo activity, at least temporarily. If the mantle is initially cold, and the core initially superheated, dynamo activity may resume as quickly as a few Myr after each impact. However unless the lower mantle has either a low viscosity or a high thermal conductivity, this restored dynamo will last for only a few hundred Myr after the end of the sequence of impacts. Thus, we find that the longevity of the magnetic field is more strongly controlled by the lower mantle properties and relatively insensitive to the impact induced temperature anomalies in the upper mantle. (C) 2017 Elsevier B.V. All rights reserved.
机译:火星上最小的巨大撞击盆地是弱磁化或完全脱磁,表明在形成的那些盆地时不存在全球磁场。八个盆地足够大,使得与其形成相关的冲击加热可能在核心 - 地幔边界(CMB)下方渗透。在这里,我们使用耦合到参数化1D核心热进化模型的3D地幔对流模型来研究Martian内部和全球磁场的命运的热演变。我们发现,上部地幔中的冲击诱导的温度异常的存活率受到搭腔粘度的强烈控制。从随后的冲击的冲击加热可以在更快的情况下积聚,比可以加速,导致热毯,使整个半球绝缘。核心的冲击加热将至少暂时停止发电机活动。如果地幔最初是冷的,并且核心最初过热,发电机活动可能会在每次冲击后尽可能快地恢复少数人。然而,除非较低的地幔具有低粘度或高导热率,除非在冲击序列结束后,这种恢复的发电机将仅持续几百个MYR。因此,我们发现磁场的寿命由较低的地幔特性更强烈地控制,并且对上部地幔中的冲击诱导温度异常相对不敏感。 (c)2017年Elsevier B.V.保留所有权利。

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