English

Enceladus's and Dione's floating ice shells supported by minimum stress isostasy

Geophysics 2016-11-07 v1 Earth and Planetary Astrophysics

Abstract

Enceladus's gravity and shape have been explained in terms of a thick isostatic ice shell floating on a global ocean, in contradiction of the thin shell implied by librations. Here we propose a new isostatic model minimizing crustal deviatoric stress, and demonstrate that gravity and shape data predict a 38±4km\rm{38\pm4\,km}-thick ocean beneath a 23±4km\rm{23\pm4\,km}-thick shell agreeing with -- but independent of -- libration data. Isostatic and tidal stresses are comparable in magnitude. South polar crust is only 7±4km7\pm4\rm\,km thick, facilitating the opening of water conduits and enhancing tidal dissipation through stress concentration. Enceladus's resonant companion, Dione, is in a similar state of minimum stress isostasy. Its gravity and shape can be explained in terms of a 99±23km\rm{99\pm23\,km}-thick isostatic shell overlying a 65±30km\rm{65\pm30\,km}-thick global ocean, thus providing the first clear evidence for a present-day ocean within Dione.

Keywords

Cite

@article{arxiv.1610.00548,
  title  = {Enceladus's and Dione's floating ice shells supported by minimum stress isostasy},
  author = {Mikael Beuthe and Attilio Rivoldini and Antony Trinh},
  journal= {arXiv preprint arXiv:1610.00548},
  year   = {2016}
}

Comments

Main paper: 14 pages, 4 figures; Supplementary information: 15 pages, 5 figures, 7 tables. Paper accepted for publication in Geophysical Research Letters