Europa's Ocean Translates Interior Tidal Heating Patterns to the Ice-Ocean Boundary

IF 8.3 Q1 GEOSCIENCES, MULTIDISCIPLINARY AGU Advances Pub Date : 2023-12-14 DOI:10.1029/2023AV000994
D. G. Lemasquerier, C. J. Bierson, K. M. Soderlund
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Abstract

The circulation in Europa's ocean determines the degree of thermal, mechanical and chemical coupling between the ice shell and the silicate mantle. Using global direct numerical simulations, we investigate the effect of heterogeneous tidal heating in the silicate mantle on rotating thermal convection in the ocean and its consequences on ice shell thickness. Under the assumption of no salinity or ocean-ice shell feedbacks, we show that convection largely transposes the latitudinal variations of tidal heating from the seafloor to the ice, leading to a higher oceanic heat flux in polar regions. Longitudinal variations are efficiently transferred when boundary-driven thermal winds develop, but are reduced in the presence of strong zonal flows and may vanish in planetary regimes. If spatially homogeneous radiogenic heating is dominant in the silicate mantle, the ocean's contribution to ice shell thickness variations is negligible compared to tidal heating within the ice. If tidal heating is instead dominant in the mantle, the situation is reversed and the ocean controls the pole-to-equator thickness contrast, as well as possible longitudinal variations.

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欧罗巴海洋将内部潮汐加热模式转化为冰洋边界
木卫二海洋的循环决定了冰壳和硅酸盐地幔之间的热、机械和化学耦合程度。利用全球直接数值模拟,研究了硅酸盐地幔的非均匀潮汐加热对海洋旋转热对流的影响及其对冰壳厚度的影响。在没有盐度和海冰壳反馈的假设下,对流在很大程度上将潮汐加热的纬向变化从海底转移到冰面,导致极地地区的海洋热通量更高。当边界驱动的热风发展时,纵向变化被有效地转移,但在强纬向流的存在下减少,并可能在行星状态下消失。如果空间均匀的辐射成因加热在硅酸盐地幔中占主导地位,那么与冰内的潮汐加热相比,海洋对冰壳厚度变化的贡献可以忽略不计。如果潮汐加热在地幔中占主导地位,情况就会相反,海洋控制着两极到赤道的厚度对比,以及可能的纵向变化。
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