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Tidal Heating and the Habitability of the TRAPPIST-1 Exoplanets

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arxiv 1902.03867 v1 pith:MMNPQPJI submitted 2019-02-11 astro-ph.EP

Tidal Heating and the Habitability of the TRAPPIST-1 Exoplanets

classification astro-ph.EP
keywords tidalplanetsheatinggreenhouseheatliquidrunawaystar
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Context. New estimates of the masses and radii of the seven planets orbiting the ultracool M-dwarf TRAPPIST-1 star permit improved modelling of their compositions, heating by tidal dissipation, and removal of tidal heat by solid-state convection. Aims. Here, we compute the heat flux due to insolation and tidal heating for the inner four planets. Methods. We apply a Maxwell viscoelastic rheology to compute the tidal response of the planets using the volume-weighted average of the viscosities and rigidities of the metal, rock, high-pressure ice and liquid water/ice I layers. Results. We show that TRAPPIST-1d and e can avoid entering a runaway greenhouse state. Planet e is the most likely to support a habitable environment, with Earth-like surface temperatures and possibly liquid water oceans. Planet d also avoids a runaway greenhouse, if its surface reflectance is at least as high as that of the Earth. Planets b and c, closer to the star, have heat fluxes high enough to trigger a runaway greenhouse and support volcanism on the surfaces of their rock layers, rendering them too warm for life. Planets f, g, and h are too far from the star to experience significant tidal heating, and likely have solid ice surfaces with possible subsurface liquid water oceans.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. The Barnard's Star Planetary System: Stability, Composition, and Evolution of Four Sub-Earth Exoplanets

    astro-ph.EP 2026-06 unverdicted novelty 4.0

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