论文标题
终结者的可居住性:M-dwarf星球上有限的水利用率
Terminator Habitability: the Case for Limited Water Availability on M-dwarf Planets
论文作者
论文摘要
旋转M紫色恒星的岩石行星是检测可居住气候的最有前途,最丰富的天文目标之一。 M矮人宜居区中的行星可能会同步旋转,因此我们期望昼夜温度差异很大,并且可能有限的分数可居住性。先前的研究重点是将分数宜居性局限于子宫或“眼”区域的方案,但是在本文中,我们探索了具有终结剂可居住性的行星的可能性,该行星的可能性是由在灼热的日子和冰川夜幕降临的过渡中存在的可居住带定义的。使用全球气候模型,我们表明,对于水限制的行星,由于大气能量运输的降低,在夜间“眼”中的温度和冻结温度可能会在夜间保持温度,同时保持温带气候。而在富含水的行星上,恒星通量的增加会导致大气能量的运输增加和昼夜温度差异的降低,因此,一旦白天的温度接近失控或潮湿的温室限制,终结器就不会保持可行。我们还表明,尽管水丰富的模拟可能会导致更大的分数可居住性,但它们容易通过在夜面表面或大气水蒸气逃生的冷捕获而遭受水分流失,这表明即使使用丰富的水形成行星,它们的气候也可能成为水的限制并受到终端居住能力的影响。
Rocky planets orbiting M-dwarf stars are among the most promising and abundant astronomical targets for detecting habitable climates. Planets in the M-dwarf habitable zone are likely synchronously rotating, such that we expect significant day-night temperature differences, and potentially limited fractional habitability. Previous studies have focused on scenarios where fractional habitability is confined to the substellar or "eye" region, but in this paper we explore the possibility of planets with terminator habitability, defined by the existence of a habitable band at the transition between a scorching dayside and a glacial nightside. Using a global climate model, we show that for water-limited planets it is possible to have scorching temperatures in the "eye" and freezing temperatures on the nightside, while maintaining a temperate climate in the terminator region, due to a reduced atmospheric energy transport. Whereas on water-rich planets, increasing stellar flux leads to increased atmospheric energy transport and a reduction in day-night temperature differences, such that the terminator does not remain habitable once the dayside temperatures approach runaway or moist greenhouse limits. We also show that, while water-abundant simulations may result in larger fractional habitability, they are vulnerable to water loss through cold-trapping on the nightside surface or atmospheric water vapor escape, suggesting that even if planets were formed with abundant water, their climates could become water-limited and subject to terminator habitability.