科技报告详细信息
Climate Modeling of a Potential ExoVenus
Kane, Stephen R ; Ceja, Alma Y ; Way, Michael J ; Quintana, Elisa V
关键词: CLIMATE MODELS;    ATMOSPHERIC GENERAL CIRCULATION MODELS;    EXTRASOLAR PLANETS;    VENUS (PLANET);    ANALOG SIMULATION;    GREENHOUSE EFFECT;    EXTRATERRESTRIAL ENVIRONMENTS;    HIGH TEMPERATURE ENVIRONMENTS;    SURFACE TEMPERATURE;    HABITABILITY;    GLOBAL WARMING;    SPECTROGRAPHS;    JAMES WEBB SPACE TELESCOPE;    INFRARED SPECTROSCOPY;    NEAR INFRARED RADIATION;   
RP-ID  :  GSFC-E-DAA-TN64844
学科分类:天体物理学
美国|英语
来源: NASA Technical Reports Server
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【 摘 要 】
The planetary mass and radius sensitivity of exoplanet discovery capabilities has reached into the terrestrial regime. The focus of such investigations is to search within the Habitable Zone where a modern Earth-like atmosphere maybe a viable comparison. However, the detection bias of the transit and radial velocity methods lies close to the host star where the received flux at the planet may push the atmosphere into a runaway greenhouse state. One such exoplanet discovery, Kepler-1649b, receives a similar flux from its star as modern Venus does from the Sun, and so was categorized as a possible exoVenus. Here we discuss the planetary parameters of Kepler-1649b in relation to Venus to establish its potential as a Venus analog. We utilize the general circulation model ROCKE-3D (Resolving Orbital and Climate Keys of Earth and Extraterrestrial Environments with Dynamics) to simulate the evolution of the surface temperature of Kepler-1649b under various assumptions, including relative atmospheric abundances. We show that in all our simulations the atmospheric model rapidly diverges from temperate surface conditions toward a runaway greenhouse with rapidly escalating surface temperatures. We calculate transmission spectra for the evolved atmosphere and discuss these spectra within the context of the James Webb Space Telescope Near-Infrared Spectrograph capabilities. We thus demonstrate the detectability of the key atmospheric signatures of possible runaway greenhouse transition states and outline the future prospects of characterizing potential Venus analogs.
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