论文标题

岩浆隔离和火山岩建模的IO岩石圈厚度和地形的潮汐控制

Tidal controls on the lithospheric thickness and topography of Io from magmatic segregation and volcanism modelling

论文作者

Spencer, Dan C, Katz, Richard F, Hewitt, Ian J

论文摘要

预计潮汐加热将向木星的火山月亮IO授予重要的,非球形的结构。通常在观察表面热通量或火山活性的观察结果中寻求空间可变的潮汐加热的特征,这是火山事件的短暂性质复杂的探索。预计岩石圈的厚度将在更长的时间尺度上发生变化,因此可以在表面观测和潮汐加热分布之间提供牢固的联系。为了预测长波长岩石圈厚度的变化,我们将三维潮汐加热计算与岩浆隔离和火山喷发的一维模型相结合。我们发现,岩石圈厚度可以与径向整合的加热速率相关,或者较弱的抗相关性。岩石圈厚度与径向整合的加热速率相关,如果岩浆侵入以岩石圈的恒定速率形成,但如果以与火山导管成比例的速度形成侵入率,则抗相关性弱。利用一个简单的同性稳定模型,我们显示了岩石圈厚度中的变化如何预测长波长的地形。岩石圈厚度和地形之间的关系取决于岩石圈和地幔之间的化学密度差异。假设这种差异很小,我们发现长波长的地形具有岩石圈厚度的反相交。这些结果将使将来的观察结果批判性地评估IO岩石圈结构的模型,并能够用来约束潮汐加热的分布。

Tidal heating is expected to impart significant, non-spherically-symmetric structure to Jupiter's volcanic moon Io. A signature of spatially variable tidal heating is generally sought in observations of surface heat fluxes or volcanic activity, an exploration complicated by the transient nature of volcanic events. The thickness of the lithosphere is expected to change over much longer timescales, and so may provide a robust link between surface observations and the tidal heating distribution. To predict long-wavelength lithospheric thickness variations, we couple three-dimensional tidal heating calculations to a suite of one-dimensional models of magmatic segregation and volcanic eruption. We find that the lithospheric thickness could either be correlated with the radially integrated heating rate, or weakly anti-correlated. Lithospheric thickness is correlated with radially integrated heating rate if magmatic intrusions form at a constant rate in the lithosphere, but is weakly anti-correlated if intrusions form at a rate proportional to the flux through volcanic conduits. Utilising a simple isostasy model we show how variations in lithospheric thickness can predict long-wavelength topography. The relationship between lithospheric thickness and topography depends on the difference in chemical density between the lithosphere and mantle. Assuming that this difference is small, we find that long-wavelength topography anti-correlates with lithospheric thickness. These results will allow future observations to critically evaluate models for Io's lithospheric structure, and enable their use in constraining the distribution of tidal heating.

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