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首页> 外文期刊>Journal of geophysical research. Planets >On the relative importance of thermal and chemical buoyancy in regular and impact-induced melting in aMars-like planet
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On the relative importance of thermal and chemical buoyancy in regular and impact-induced melting in aMars-like planet

机译:关于热和化学浮力在常规和冲击引起的熔化中的相对重要性在amars的行星中的熔化

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摘要

We ran several series of two-dimensional numerical mantle convection simulations representing in idealized form the thermochemical evolution of a Mars-like planet. In order to study the importance of compositional buoyancy of melting mantle, the models were set up in pairs of one including all thermal and compositional contributions to buoyancy and one accounting only for the thermal contributions. In several of the model pairs, single large impacts were introduced as causes of additional strong local anomalies, and their evolution in the framework of the convecting mantle was tracked. The models confirm that the additional buoyancy provided by the depletion of the mantle by regular melting can establish a global stable stratification of the convecting mantle and throttle crust production. Furthermore, the compositional buoyancy is essential in the stabilization and preservation of local compositional anomalies directly beneath the lithosphere and offers a possible explanation for the existence of distinct, long-lived reservoirs in the Martian mantle. The detection of such anomalies by geophysical means is probably difficult, however; they are expected to be detected by gravimetry rather than by seismic or heat flow measurements. The results further suggest that the crustal thickness can be locally overestimated by up to -20 km if impact-induced density anomalies in the mantle are neglected.
机译:我们运行了几系列的二维数值披露对流模拟,其理想化形成了Mars样行星的热化学演变。为了研究熔融地幔的构成浮力的重要性,成对的模型成对地设立,包括所有热和组成贡献,以浮力,仅用于热贡献。在一些模型对中,引入了单一的巨大影响作为额外的强大局部异常的原因,跟踪了对混乱地幔的框架中的演变。该模型确认通过定期熔化耗尽的额外浮力,可以建立对流式地幔和节气壳生产的全球稳定分层。此外,组成浮力是在岩石圈下方稳定和保存局部成分异常的稳定和保存,并为在火星地幔中存在鲜明,长的水库存在的可能解释。然而,通过地球物理方法检测这种异常可能困难;预计重力地检测到重链件而不是通过地震或热流测量来检测。结果进一步表明,如果忽略了地幔中的冲击引起的密度异常,则可以局部厚度高达-20km。

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