Hydrodynamical interaction of stellar and planetary winds: effects of charge exchange and radiation pressure on the observed Ly α absorption

Author:

Esquivel A12ORCID,Schneiter M234,Villarreal D’Angelo C5ORCID,Sgró M A2ORCID,Krapp L26

Affiliation:

1. Instituto de Ciencias Nucleares, Universidad Nacional Autónoma de México, Apartado Postal 70-543, 04510 Ciudad de México, Mexico

2. Instituto de Astronomía Teórica y Experimental, CONICET – UNC, Laprida 854, X5000BGR Córdoba, Argentina

3. Departamento de Materiales y Tecnología, Universidad Nacional de Córdoba, X5016GCA Córdoba, Argentina

4. Department of Astronomy, Stockholm University, AlbaNova, SE-106 91 Stockholm, Sweden

5. School of Physics, Trinity College Dublin, College Green, Dublin 2, Ireland

6. Niels Bohr International Academy, The Niels Bohr Institute, Blegdamsvej 17, DK-2100 Copenhagen Ø, Denmark

Abstract

ABSTRACT Lyman α observations of the transiting exoplanet HD 209458b enable the study of exoplanet exospheres exposed to stellar extreme ultraviolet (EUV) fluxes, as well as the interacting stellar wind properties. In this study we present 3D hydrodynamical models for the stellar–planetary wind interaction including radiation pressure and charge exchange, together with photoionization, recombination, and collisional ionization processes. Our models explore the contribution of the radiation pressure and charge exchange to the Ly α absorption profile in a hydrodynamical framework, and for a single set of stellar wind parameters appropriate for HD 209458. We find that most of the absorption is produced by the material from the planet, with a secondary contribution of neutralized stellar ions by charge exchange. At the same time, the hydrodynamic shock heats up the planetary material, resulting in a broad thermal profile. Meanwhile, the radiation pressure yields a small velocity shift of the absorbing material. While neither charge exchange nor radiation pressure provides enough neutrals at the velocity needed to explain the observations at −100 km s−1 individually, we find that the two effects combined with the broad thermal profile are able to explain the observations.

Funder

Universidad Nacional Autónoma de México

Consejo Nacional de Ciencia y Tecnología

Consejo Nacional de Investigaciones Científicas y Técnicas

Irish Research Council

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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