Climate of high obliquity exo-terrestrial planets with a three-dimensional cloud system resolving climate model
arXiv:2210.05094 · doi:10.3847/1538-4357/ac98ae
Abstract
Planetary climates are strongly affected by planetary orbital parameters such as obliquity, eccentricity, and precession. In exoplanetary systems, exo-terrestrial planets should have various obliquities. High-obliquity planets would have extreme seasonal cycles due to the seasonal change of the distribution of the insolation. Here, we introduce the Non-hydrostatic ICosahedral Atmospheric Model(NICAM), a global cloud-resolving model, to investigate the climate of high-obliquity planets. This model can explicitly simulate a three-dimensional cloud distribution and vertical transports of water vapor. We simulated exo-terrestrial climates with high resolution using the supercomputer FUGAKU. We assumed aqua-planet configurations with 1 bar of air as a background atmosphere, with four different obliquities (, , , and ). We ran two sets of simulations: 1) low-resolution (~ 220 km-mesh as the standard resolution of a general circulation model for exoplanetary science) with parametrization for cloud formation, and 2) high-resolution (~ 14 km-mesh) with an explicit cloud microphysics scheme. Results suggest that high-resolution simulations with an explicit treatment of cloud microphysics reveal warmer climates due to less low cloud fraction and a large amount of water vapor in the atmosphere. It implies that treatments of cloud-related processes lead to a difference between different resolutions in climatic regimes in cases with high obliquities.
18 pages, 9 figure, 2 tables. Accepted for publication in The Astrophysical Journal
References in corpus (5)
- The habitability of Proxima Centauri b II. Possible climates and Observability
- Effects of Extreme Obliquity Variations on the Habitability of Exoplanets
- Atmospheric convection plays a key role in the climate of tidally-locked terrestrial exoplanets: insights from high-resolution simulations
- Mechanisms leading to a warmer climate on high obliquity planets
- Small Sensitivity of the Simulated Climate of Tidally Locked Aquaplanets to Model Resolution