Literature DB >> 32944211

Energy Dissipation in the Upper Atmospheres of Trappist-1 Planets.

Ofer Cohen1,2, Alex Glocer3, Cecilia Garraffo4, Jeremy J Drake4, Jared M Bell5.   

Abstract

We present a method to quantify the upper-limit of the energy transmitted from the intense stellar wind to the upper atmospheres of three of the Trappist-1 planets (e, f, and g). We use a formalism that treats the system as two electromagnetic regions, where the efficiency of the energy transmission between one region (the stellar wind at the planetary orbits) to the other (the planetary ionospheres) depends on the relation between the conductances and impedances of the two regions. Since the energy flux of the stellar wind is very high at these planetary orbits, we find that for the case of high transmission efficiency (when the conductances and impedances are close in magnitude), the energy dissipation in the upper planetary atmospheres is also very large. On average, the Ohmic energy can reach 0.5 - 1 W/m 2, about 1% of the stellar irradiance and 5-15 times the EUV irradiance. Here, using constant values for the ionospheric conductance, we demonstrate that the stellar wind energy could potentially drive large atmospheric heating in terrestrial planets, as well as in hot jupiters. More detailed calculations are needed to assess the ionospheric conductance and to determine more accurately the amount of heating the stellar wind can drive in close-orbit planets.

Keywords:  magnetic fields; planets and satellites: atmospheres; plasmas

Year:  2018        PMID: 32944211      PMCID: PMC7493050          DOI: 10.3847/2041-8213/aab5b5

Source DB:  PubMed          Journal:  Astrophys J Lett        ISSN: 2041-8205            Impact factor:   7.413


  2 in total

1.  Enhanced interplanetary panspermia in the TRAPPIST-1 system.

Authors:  Manasvi Lingam; Abraham Loeb
Journal:  Proc Natl Acad Sci U S A       Date:  2017-06-13       Impact factor: 11.205

2.  Seven temperate terrestrial planets around the nearby ultracool dwarf star TRAPPIST-1.

Authors:  Michaël Gillon; Amaury H M J Triaud; Brice-Olivier Demory; Emmanuël Jehin; Eric Agol; Katherine M Deck; Susan M Lederer; Julien de Wit; Artem Burdanov; James G Ingalls; Emeline Bolmont; Jeremy Leconte; Sean N Raymond; Franck Selsis; Martin Turbet; Khalid Barkaoui; Adam Burgasser; Matthew R Burleigh; Sean J Carey; Aleksander Chaushev; Chris M Copperwheat; Laetitia Delrez; Catarina S Fernandes; Daniel L Holdsworth; Enrico J Kotze; Valérie Van Grootel; Yaseen Almleaky; Zouhair Benkhaldoun; Pierre Magain; Didier Queloz
Journal:  Nature       Date:  2017-02-22       Impact factor: 49.962

  2 in total

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