论文标题

陆地反照率对Trappist-1系统中陆地主导行星气候的影响

The Effect of Land Albedo on the Climate of Land-Dominated Planets in the TRAPPIST-1 System

论文作者

Rushby, Andrew J., Shields, Aomawa L., Wolf, Eric T., Laguë, Marysa, Burgasser, Adam

论文摘要

包含土地主导行星表面的大量材料反射特性的变化将通过与宿主恒星的入射辐射不同而影响行星能平衡。此外,在陆地材料可能在反击中显示出额外的可变性的区域中,低质量酷星(例如附近的M8V矮人Trappist-1)在较长的波长中散发出其通量的很大一部分。使用社区地球系统模型(CESM),我们研究了在空间均匀的,完全陆路覆盖的行星的背景下,土地表面及其反照率对行星气候的组成的影响,并在Trappist-1d,Trappist-1E和Trappist-1F的轨道分离下具有干燥的气氛。为这些模拟,我们使用四个陆生成端成员(花岗岩,方解石,芳基和沙丘砂)的经验得出的光谱(花岗岩,方解石,芳基岛和沙丘砂)以及这些模拟的复合谱图,并将这些模型的输出与水蛋白酶和几个溶胶光谱控制案例进行了比较。我们报告说,在全球平均表面温度,大气旋转特征的变化以及使用红外反照率较高的材料(方解石和沙丘砂)的情况下,使用了更具吸收性的地壳材料(例如花岗岩或干燥的土壤),我们报告了约50 K的差异。 Aquaplanet Trappist-1D场景导致不稳定的失控温室政权。因此,我们证明,确定大陆陆地的组成和反照率对于准确确定陆地系外行星的气候至关重要。

Variations in the reflective properties of the bulk material that comprises the surface of land-dominated planets will affect the planetary energy balance by interacting differently with incident radiation from the host star. Furthermore, low-mass cool stars, such as nearby M8V dwarf TRAPPIST-1, emit a significant fraction of their flux in longer wavelengths relative to the Sun in regions where terrestrial materials may exhibit additional variability in albedo. Using the Community Earth System Model (CESM) we investigate the effect of the composition of the land surface and its albedo on planetary climate in the context of spatially homogeneous, entirely land-covered planets with dry atmospheres at the orbital separation of TRAPPIST-1d, TRAPPIST-1e, and TRAPPIST-1f. We use empirically derived spectra of four terrestrial compositional endmembers (granite, calcite, aridisol, and dune sand) and a composite spectrum of TRAPPIST-1 for these simulations and compare these model output to an aquaplanet and several Sol-spectrum control cases. We report a difference of approximately 50 K in global mean surface temperature, variations in atmospheric rotational features, and a reduction in cross-equatorial heat transport between scenarios in which materials with higher albedo in the infrared (calcite and dune sand) were used and those with more absorptive crustal material, such as granite or dry soils. An aquaplanet TRAPPIST-1d scenario results in an unstable runaway greenhouse regime. Therefore, we demonstrate that determining the composition and albedo of continental landmasses is crucial for making accurate determinations of the climate of terrestrial exoplanets.

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