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Earth’s evolving stress state and the past, present, and future stability of cratonic lithosphere

机译:地球演化的应力状态以及克拉通岩石圈的过去,现在和将来的稳定性

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The vigour of convection in the Earth’s mantle declines over time because of the decay of internal heat sources. Decaying heat sources alone would imply a gradual thermal change from the Archaean to the present. The larger impact for the Earth is due to the temperature dependence of mantle viscosity. As the mantle cools, viscosity exponentially increases. This is the dominant effect that leads to a decrease in the ratio of the forces that drive convection relative to those that resist it (i.e. to a decreasing mantle Rayleigh number). Provided that the mantle remains in the high Rayleigh number regime, as it is at present, increasing viscosity outweighs declining convective velocities in determining convection-generated stress, and mantle stress levels increase from the Archaean to the present. This is demonstrated by thermal history calculations and numerical simulations of mantle convection in a plate-tectonic regime. Thermal modelling studies further predict that bulk mantle viscosity will adjust to the Earth’s cooling faster than deep continental lithosphere. This results in a greater coupling between the mantle and continental lithosphere over time. Collectively these arguments lead to the conclusion that sections of continental lithosphere that have remained stable since the Archaean and the Proterozoic are becoming progressively more prone to instability in the geologically modern era.
机译:由于内部热源的衰减,地幔对流的活力随着时间的推移而下降。仅仅衰减热源就意味着从古细菌到现在的逐渐的热变化。对地球的更大影响归因于地幔粘度的温度依赖性。随着地幔冷却,粘度呈指数增加。这是主要作用,其导致驱动对流的力与抵抗对流的力之比减小(即,降低地幔瑞利数)。假设地幔保持在目前的高瑞利数状态,在确定对流产生的应力时,增加的粘度将超过对流速度的下降,并且地幔应力水平从古生的到现在都增加。通过板块构造条件下地幔对流的热历史计算和数值模拟可以证明这一点。热模型研究进一步预测,地幔粘度将比深大陆岩石圈更快地适应地球的降温。随着时间的流逝,这将导致地幔和大陆岩石圈之间的耦合更大。这些论点共同得出一个结论,即自古生代和元古代以来一直保持稳定的大陆岩石圈部分在地质现代时代变得越来越倾向于不稳定。

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