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Thermal convection heated both volumetrically and from below: Implications for predictions of planetary evolution

机译:体积和从下面加热的热对流:对行星演化的预测的意义

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摘要

Solid-state thermal convection. as a model for the internal dynamics of planetary mantles, is generated both by volumetric heating and heating from below. A series of 2D and 3D numerical experiments is described where a bottom heat flux is prescribed as well as a constant fraction of volumetric heating with either free-slip or no-slip conditions for the two horizontal boundaries. The assumption that hot plumes rising in the interior of the layer act as a volumetric heat source leads to a first order scaling of thermal boundary layers. Cases with a no-slip boundary agree well with this scaling while cases with free-slip systematically deviate: a decrease of 20-30% is observed for the temperature difference across the boundary layer when the fraction of heating from below is increased from 0 to 1. These differences are attributable to a velocity structure near the boundary varying with the fraction of volumetric heating. The main planetary implications are that (i) the average thermal structure of the bulk mantle and lithosphere are not good indicators of the distribution of heat sources between the interior (e.g. radioactive heating, secular cooling) and the lower interface (e.g. core cooling); (ii) in contrast, the nature of volcanism (whether it is localized, hot spot like or widespread) reflect this distribution and should thus help to constrain the global thermal structure as well as the existence of a magnetic dynamo.
机译:固态热对流。作为行星地幔内部动力学的模型,是通过体积加热和从下方加热产生的。描述了一系列2D和3D数值实验,其中规定了底部热通量以及两个水平边界在自由滑或无滑条件下的恒定体积加热量。在层内部上升的热烟流充当体积热源的假设导致热边界层的一阶缩放。带有无滑移边界的情况与这种缩放方式非常吻合,而具有滑移边界的情况则系统地偏离:当从下方加热的比例从0增大到0时,跨边界层的温差降低了20-30%。 1.这些差异可归因于边界附近的速度结构随体积加热分数的变化而变化。行星的主要含义是:(i)地幔和岩石圈的平均热结构不是内部(例如放射性加热,长期冷却)和下部界面(例如核心冷却)之间热源分布的良好指标; (ii)相反,火山的性质(无论是局部的,类似热点的还是广泛分布的)都反映了这种分布,因此应有助于限制全球的热结构以及磁发电机的存在。

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