冰冻世界的潮汐变形和耗散过程。

IF 9.1 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Space Science Reviews Pub Date : 2025-01-01 Epub Date: 2025-01-16 DOI:10.1007/s11214-025-01136-y
G Tobie, P Auclair-Desrotour, M Běhounková, M Kervazo, O Souček, K Kalousová
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引用次数: 0

摘要

潮汐相互作用在冰冷世界的动力学和进化中起着关键作用。欧罗巴强烈的构造活动和土卫二的喷发活动是潮汐变形和相关耗散表现的明显例子。虽然潮汐加热长期以来一直被认为是这些冰冷世界活动的主要驱动因素,但控制潮汐力如何使不同的内层变形并通过潮汐摩擦产生热量的机制仍然知之甚少。由于潮汐强迫随轨道特征(与中心行星的距离、离心率、倾角)而变化,因此潮汐加热对内部热量收支的贡献可能在地质时间尺度上发生强烈变化。在某些情况下,潮汐产生的热量会导致内部融化和表面活动以各种形式出现。即使在没有产生大量热量的情况下,潮汐变形也可以用来探测内部结构,冰卫星的潮汐响应对其水圈结构非常敏感。本文综述了冰世界各层潮汐变形和耗散的计算方法。在总结了潮汐变形的主要原理和用于模拟粘弹性潮汐响应的不同流变模型之后,我们描述了在岩石为主的岩心、地下海洋和冰壳中预期的耗散过程,并强调了潮汐加热在热演化和活动方面的潜在影响。我们最终预测了未来木星和土星卫星任务收集的数据如何用于限制它们的潮汐响应以及过去和现在活动的后果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tidal Deformation and Dissipation Processes in Icy Worlds.

Tidal interactions play a key role in the dynamics and evolution of icy worlds. The intense tectonic activity of Europa and the eruption activity on Enceladus are clear examples of the manifestation of tidal deformation and associated dissipation. While tidal heating has long been recognized as a major driver in the activity of these icy worlds, the mechanism controlling how tidal forces deform the different internal layers and produce heat by tidal friction still remains poorly constrained. As tidal forcing varies with orbital characteristics (distance to the central planet, eccentricity, obliquity), the contribution of tidal heating to the internal heat budget can strongly change over geological timescales. In some circumstances, the tidally-produced heat can result in internal melting and surface activity taking various forms. Even in the absence of significant heat production, tidal deformation can be used to probe the interior structure, the tidal response of icy moons being strongly sensitive to their hydrosphere structure. In the present paper, we review the methods to compute tidal deformation and dissipation in the different layers composing icy worlds. After summarizing the main principle of tidal deformation and the different rheological models used to model visco-elastic tidal response, we describe the dissipation processes expected in rock-dominated cores, subsurface oceans and icy shells and highlight the potential effects of tidal heating in terms of thermal evolution and activity. We finally anticipate how data collected by future missions to Jupiter's and Saturn's moons could be used to constrain their tidal response and the consequences for past and present activities.

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来源期刊
Space Science Reviews
Space Science Reviews 地学天文-天文与天体物理
CiteScore
19.70
自引率
3.90%
发文量
60
审稿时长
4-8 weeks
期刊介绍: Space Science Reviews (SSRv) stands as an international journal dedicated to scientific space research, offering a contemporary synthesis across various branches of space exploration. Emphasizing scientific outcomes and instruments, SSRv spans astrophysics, physics of planetary systems, solar physics, and the physics of magnetospheres & interplanetary matter. Beyond Topical Collections and invited Review Articles, Space Science Reviews welcomes unsolicited Review Articles and Special Communications. The latter encompass papers related to a prior topical volume/collection, report-type papers, or timely contributions addressing a robust combination of space science and technology. These papers succinctly summarize both the science and technology aspects of instruments or missions in a single publication.
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