English

Interior Structures and Tidal Heating in the TRAPPIST-1 Planets

Earth and Planetary Astrophysics 2018-05-30 v2

Abstract

With seven planets, the TRAPPIST-1 system has the largest number of exoplanets discovered in a single system so far. The system is of astrobiological interest, because three of its planets orbit in the habitable zone of the ultracool M dwarf. Assuming the planets are composed of non-compressible iron, rock, and H2_2O, we determine possible interior structures for each planet. To determine how much tidal heat may be dissipated within each planet, we construct a tidal heat generation model using a single uniform viscosity and rigidity for each planet based on the planet's composition. With the exception of TRAPPIST-1c, all seven of the planets have densities low enough to indicate the presence of significant H2_2O in some form. Planets b and c experience enough heating from planetary tides to maintain magma oceans in their rock mantles; planet c may have eruptions of silicate magma on its surface, which may be detectable with next-generation instrumentation. Tidal heat fluxes on planets d, e, and f are lower, but are still twenty times higher than Earth's mean heat flow. Planets d and e are the most likely to be habitable. Planet d avoids the runaway greenhouse state if its albedo is \gtrsim 0.3. Determining the planet's masses within 0.1\sim0.1 to 0.5 Earth masses would confirm or rule out the presence of H2_2O and/or iron in each planet, and permit detailed models of heat production and transport in each planet. Understanding the geodynamics of ice-rich planets f, g, and h requires more sophisticated modeling that can self-consistently balance heat production and transport in both rock and ice layers.

Keywords

Cite

@article{arxiv.1712.05641,
  title  = {Interior Structures and Tidal Heating in the TRAPPIST-1 Planets},
  author = {Amy C. Barr and Vera Dobos and László L. Kiss},
  journal= {arXiv preprint arXiv:1712.05641},
  year   = {2018}
}

Comments

34 pages, 3 tables, 4 figures. Accepted for publication in Astronomy & Astrophysics -- final version including corrections made in proof stage

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