Implementation and validation of the GEANT4/AtRIS code to model the radiation environment at Mars

A new GEANT4 particle transport model – the Atmospheric Radiation Interaction Simulator (AtRIS, Banjac et al. 2018. J Geophys Res Space Phys 123. https://doi.org/10.1029/2018JA026042) – has been recently developed in order to model the interaction of radiation with planets. The upcoming instrumentat...

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Main Authors: Guo Jingnan, Banjac Saša, Röstel Lennart, Terasa Jan C., Herbst Konstantin, Heber Bernd, Wimmer-Schweingruber Robert F.
Format: Article
Language:English
Published: EDP Sciences 2019-01-01
Series:Journal of Space Weather and Space Climate
Subjects:
Online Access:https://doi.org/10.1051/swsc/2018051
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spelling doaj-ae975879dbfa47c9be9ca20a91e4a8572021-03-02T10:12:26ZengEDP SciencesJournal of Space Weather and Space Climate2115-72512019-01-019A210.1051/swsc/2018051swsc180066Implementation and validation of the GEANT4/AtRIS code to model the radiation environment at MarsGuo JingnanBanjac SašaRöstel LennartTerasa Jan C.Herbst KonstantinHeber BerndWimmer-Schweingruber Robert F.A new GEANT4 particle transport model – the Atmospheric Radiation Interaction Simulator (AtRIS, Banjac et al. 2018. J Geophys Res Space Phys 123. https://doi.org/10.1029/2018JA026042) – has been recently developed in order to model the interaction of radiation with planets. The upcoming instrumentational advancements in the exoplanetary science, in particular transit spectroscopy capabilities of missions like JWST and E-ELT, have motivated the development of a particle transport code with a focus on providing the necessary flexibility in planet specification (atmosphere and soil geometry and composition, tidal locking, oceans, clouds, etc.) for the modeling of radiation environment for exoplanets. Since there are no factors limiting the applicability of AtRIS to Mars and Venus, AtRIS’ unique flexibility opens possibilities for new studies. Following the successful validation against Earth measurements (Banjac et al. 2018. J Geophys Res Space Phys 123. https://doi.org/10.1029/2018JA026042), this work applies AtRIS with a specific implementation of the Martian atmospheric and regolith structure to model the radiation environment at Mars. We benchmark these first modeling results based on different GEANT4 physics lists with the energetic particle spectra recently measured by the Radiation Assessment Detector (RAD) on the surface of Mars. The good agreement between AtRIS and the actual measurement provides one of the first and sound validations of AtRIS and the preferred physics list which could be recommended for predicting the radiation field of other conceivable (exo)planets with an atmospheric environment similar to Mars.https://doi.org/10.1051/swsc/2018051Particle radiation in spaceParticle transport modelMartian explorationPlanetary space weather
collection DOAJ
language English
format Article
sources DOAJ
author Guo Jingnan
Banjac Saša
Röstel Lennart
Terasa Jan C.
Herbst Konstantin
Heber Bernd
Wimmer-Schweingruber Robert F.
spellingShingle Guo Jingnan
Banjac Saša
Röstel Lennart
Terasa Jan C.
Herbst Konstantin
Heber Bernd
Wimmer-Schweingruber Robert F.
Implementation and validation of the GEANT4/AtRIS code to model the radiation environment at Mars
Journal of Space Weather and Space Climate
Particle radiation in space
Particle transport model
Martian exploration
Planetary space weather
author_facet Guo Jingnan
Banjac Saša
Röstel Lennart
Terasa Jan C.
Herbst Konstantin
Heber Bernd
Wimmer-Schweingruber Robert F.
author_sort Guo Jingnan
title Implementation and validation of the GEANT4/AtRIS code to model the radiation environment at Mars
title_short Implementation and validation of the GEANT4/AtRIS code to model the radiation environment at Mars
title_full Implementation and validation of the GEANT4/AtRIS code to model the radiation environment at Mars
title_fullStr Implementation and validation of the GEANT4/AtRIS code to model the radiation environment at Mars
title_full_unstemmed Implementation and validation of the GEANT4/AtRIS code to model the radiation environment at Mars
title_sort implementation and validation of the geant4/atris code to model the radiation environment at mars
publisher EDP Sciences
series Journal of Space Weather and Space Climate
issn 2115-7251
publishDate 2019-01-01
description A new GEANT4 particle transport model – the Atmospheric Radiation Interaction Simulator (AtRIS, Banjac et al. 2018. J Geophys Res Space Phys 123. https://doi.org/10.1029/2018JA026042) – has been recently developed in order to model the interaction of radiation with planets. The upcoming instrumentational advancements in the exoplanetary science, in particular transit spectroscopy capabilities of missions like JWST and E-ELT, have motivated the development of a particle transport code with a focus on providing the necessary flexibility in planet specification (atmosphere and soil geometry and composition, tidal locking, oceans, clouds, etc.) for the modeling of radiation environment for exoplanets. Since there are no factors limiting the applicability of AtRIS to Mars and Venus, AtRIS’ unique flexibility opens possibilities for new studies. Following the successful validation against Earth measurements (Banjac et al. 2018. J Geophys Res Space Phys 123. https://doi.org/10.1029/2018JA026042), this work applies AtRIS with a specific implementation of the Martian atmospheric and regolith structure to model the radiation environment at Mars. We benchmark these first modeling results based on different GEANT4 physics lists with the energetic particle spectra recently measured by the Radiation Assessment Detector (RAD) on the surface of Mars. The good agreement between AtRIS and the actual measurement provides one of the first and sound validations of AtRIS and the preferred physics list which could be recommended for predicting the radiation field of other conceivable (exo)planets with an atmospheric environment similar to Mars.
topic Particle radiation in space
Particle transport model
Martian exploration
Planetary space weather
url https://doi.org/10.1051/swsc/2018051
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