Lightning activity on a tidally locked terrestrial exoplanet in storm-resolving simulations for a range of surface pressures

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Sergeev, Denis E., McDermott, James W., Woods, Lottie, Braam, Marrick, Eager-Nash, Jake K., Boutle, Ian A.
Natura: Preprint
Pubblicazione: 2025
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866908506336002048
author Sergeev, Denis E.
McDermott, James W.
Woods, Lottie
Braam, Marrick
Eager-Nash, Jake K.
Boutle, Ian A.
author_facet Sergeev, Denis E.
McDermott, James W.
Woods, Lottie
Braam, Marrick
Eager-Nash, Jake K.
Boutle, Ian A.
contents Cloudy atmospheres produce electric discharges, including lightning. Lightning, in turn, provides sufficient energy to break down air molecules into reactive species and thereby affects the atmospheric composition. The climate of tidally locked rocky exoplanets orbiting M-dwarf stars may have intense and highly localised thunderstorm activity associated with moist convection on their day side. The distribution and structure of lightning-producing convective clouds is shaped by various climate parameters, of which a key one is atmospheric mass, i.e. surface air pressure. In this study, we use a global storm-resolving climate model to predict thunderstorm occurrence for a tidally locked exoplanet over a range of surface pressures. We compare two lightning parameterisations: one based on ice cloud microphysics and one based on the vertical extent of convective clouds. We find that both parameterisations predict that the amount of lightning monotonically decreases with surface pressure due to weaker convection and fewer ice clouds. The spatial distribution of lightning on the planet changes with respect to the surface pressure, responding to the changes in the large-scale circulation and the vertical stratification of the atmosphere. Our study provides revised, high-resolution estimates for lightning activity on a tidally locked Earth-like exoplanet, with implications for global atmospheric chemistry.
format Preprint
id arxiv_https___arxiv_org_abs_2504_19883
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Lightning activity on a tidally locked terrestrial exoplanet in storm-resolving simulations for a range of surface pressures
Sergeev, Denis E.
McDermott, James W.
Woods, Lottie
Braam, Marrick
Eager-Nash, Jake K.
Boutle, Ian A.
Earth and Planetary Astrophysics
Atmospheric and Oceanic Physics
Cloudy atmospheres produce electric discharges, including lightning. Lightning, in turn, provides sufficient energy to break down air molecules into reactive species and thereby affects the atmospheric composition. The climate of tidally locked rocky exoplanets orbiting M-dwarf stars may have intense and highly localised thunderstorm activity associated with moist convection on their day side. The distribution and structure of lightning-producing convective clouds is shaped by various climate parameters, of which a key one is atmospheric mass, i.e. surface air pressure. In this study, we use a global storm-resolving climate model to predict thunderstorm occurrence for a tidally locked exoplanet over a range of surface pressures. We compare two lightning parameterisations: one based on ice cloud microphysics and one based on the vertical extent of convective clouds. We find that both parameterisations predict that the amount of lightning monotonically decreases with surface pressure due to weaker convection and fewer ice clouds. The spatial distribution of lightning on the planet changes with respect to the surface pressure, responding to the changes in the large-scale circulation and the vertical stratification of the atmosphere. Our study provides revised, high-resolution estimates for lightning activity on a tidally locked Earth-like exoplanet, with implications for global atmospheric chemistry.
title Lightning activity on a tidally locked terrestrial exoplanet in storm-resolving simulations for a range of surface pressures
topic Earth and Planetary Astrophysics
Atmospheric and Oceanic Physics
url https://arxiv.org/abs/2504.19883