English

Seismic wave propagation in icy ocean worlds

Geophysics 2017-12-06 v2 Earth and Planetary Astrophysics

Abstract

Seismology was developed on Earth and shaped our model of the Earth's interior over the 20th century. With the exception of the Philae lander, all in situ extraterrestrial seismological effort to date was limited to other terrestrial planets. All have in common a rigid crust above a solid mantle. The coming years may see the installation of seismometers on Europa, Titan and Enceladus, so it is necessary to adapt seismological concepts to the setting of worlds with global oceans covered in ice. Here we use waveform analyses to identify and classify wave types, developing a lexicon for icy ocean world seismology intended to be useful to both seismologists and planetary scientists. We use results from spectral-element simulations of broadband seismic wavefields to adapt seismological concepts to icy ocean worlds. We present a concise naming scheme for seismic waves and an overview of the features of the seismic wavefield on Europa, Titan, Ganymede and Enceladus. In close connection with geophysical interior models, we analyze simulated seismic measurements of Europa and Titan that might be used to constrain geochemical parameters governing the habitability of a sub-ice ocean.

Keywords

Cite

@article{arxiv.1705.03500,
  title  = {Seismic wave propagation in icy ocean worlds},
  author = {Simon C. Stähler and Mark P. Panning and Steve D. Vance and Ralph Lorenz and Martin van Driel and Tarje Nissen-Meyer and Sharon Kedar},
  journal= {arXiv preprint arXiv:1705.03500},
  year   = {2017}
}

Comments

47 pages, 14 figures, accepted for publication in JGR Planets