Assessing the Climate and Habitability of Tidally Locked Rocky Exoplanets.

IF 2.3 3区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS
Erica Bisesi, Giuseppe Murante, Jost von Hardenberg, José A Caballero, Michele Maris, Daniela Billi, Nicoletta La Rocca, Laura Silva
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Abstract

Tidally locked exoplanets orbiting M dwarf stars are prime targets in the search for habitable worlds, yet their complex climate dynamics challenge conventional models of habitability. We homogeneously estimated the liquid-water habitability of exoplanets with the highest up-to-date Earth similarity index (ESI). We modified the climate model PLASIM to apply it to tidally locked exoplanets across a range of parameters. We systematically classified and compared potentially habitable exoplanets and selected among the ones featuring the highest ESI in the conservative sample of the Habitable Worlds Catalog, both relative to each other and as a function of atmospheric pressure. Our analysis revealed three main climate regimes: Snowball, Hot, and Eyeball planets-the latter having a warm and habitable substellar region with T > 273 K and a localized hydrological cycle. Although surface temperature generally increases with pressure, Eyeball planet climates remain stable in a wide pressure range. Complex atmospheric dynamics rules the behavior of the climate, highlighting the need for detailed climate simulations to guide future observations.

评估潮汐锁定的岩石系外行星的气候和可居住性。
围绕M矮星运行的潮汐锁定系外行星是寻找宜居世界的主要目标,但它们复杂的气候动力学挑战了传统的宜居模型。我们均匀地估计了具有最高地球相似指数(ESI)的系外行星的液态水可居住性。我们修改了气候模型PLASIM,将其应用于一系列参数的潮汐锁定系外行星。我们系统地对可能适合居住的系外行星进行了分类和比较,并在可居住世界目录的保守样本中选择了ESI最高的行星,无论是相对于彼此还是作为大气压力的函数。我们的分析揭示了三种主要的气候状态:雪球行星、热行星和眼球行星——后者有一个温暖的、适宜居住的亚恒星区域,温度为10273k,并且有一个局部的水文循环。虽然表面温度通常随着压力的增加而增加,眼球行星的气候在很大的压力范围内保持稳定。复杂的大气动力学控制着气候的行为,因此需要详细的气候模拟来指导未来的观测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Astrobiology
Astrobiology 生物-地球科学综合
CiteScore
7.70
自引率
11.90%
发文量
100
审稿时长
3 months
期刊介绍: Astrobiology is the most-cited peer-reviewed journal dedicated to the understanding of life''s origin, evolution, and distribution in the universe, with a focus on new findings and discoveries from interplanetary exploration and laboratory research. Astrobiology coverage includes: Astrophysics; Astropaleontology; Astroplanets; Bioastronomy; Cosmochemistry; Ecogenomics; Exobiology; Extremophiles; Geomicrobiology; Gravitational biology; Life detection technology; Meteoritics; Planetary geoscience; Planetary protection; Prebiotic chemistry; Space exploration technology; Terraforming
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