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ATMOSPHERIC DYNAMICS OF TERRESTRIAL EXOPLANETS OVER A WIDE RANGE OF ORBITAL AND ATMOSPHERIC PARAMETERS

机译:大范围轨道和大气参数上的地幔外大气动力学

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The recent discoveries of terrestrial exoplanets and super-Earths extending over a broad range of orbital and physical parameters suggest that these planets will span a wide range of climatic regimes. Characterization of the atmospheres of warm super-Earths has already begun and will be extended to smaller and more distant planets over the coming decade. The habitability of these worlds may be strongly affected by their three-dimensional atmospheric circulation regimes, since the global climate feedbacks that control the inner and outer edges of the habitable zone—including transitions to Snowball-like states and runaway-greenhouse feedbacks—depend on the equator-to-pole temperature differences, patterns of relative humidity, and other aspects of the dynamics. Here, using an idealized moist atmospheric general circulation model including a hydrological cycle, we study the dynamical principles governing the atmospheric dynamics on such planets. We show how the planetary rotation rate, stellar flux, atmospheric mass, surface gravity, optical thickness, and planetary radius affect the atmospheric circulation and temperature distribution on such planets. Our simulations demonstrate that equator-to-pole temperature differences, meridional heat transport rates, structure and strength of the winds, and the hydrological cycle vary strongly with these parameters, implying that the sensitivity of the planet to global climate feedbacks will depend significantly on the atmospheric circulation. We elucidate the possible climatic regimes and diagnose the mechanisms controlling the formation of atmospheric jet streams, Hadley and Ferrel cells, and latitudinal temperature differences. Finally, we discuss the implications for understanding how the atmospheric circulation influences the global climate.
机译:最近发现的系外行星和超地球的轨道和物理参数范围很广,这表明这些行星将跨越很宽的气候范围。温暖的超地球大气层的表征已经开始,并将在未来十年扩展到更小更遥远的行星。这些世界的可居住性可能会受到其三维大气环流制度的强烈影响,因为控制可居住区域内外边缘的全球气候反馈(包括向雪球状状态的转换和温室大棚的反馈)取决于赤道到极点的温差,相对湿度的模式以及动力学的其他方面。在这里,我们使用理想的潮湿大气总循环模型(包括水文循环),研究了控制此类行星大气动力学的动力学原理。我们展示了行星旋转速度,恒星通量,大气质量,表面重力,光学厚度和行星半径如何影响此类行星的大气环流和温度分布。我们的模拟结果表明,赤道与极点之间的温差,子午热传输率,风的结构和强度以及水文循环随这些参数而变化很大,这意味着行星对全球气候反馈的敏感性将在很大程度上取决于大气环流。我们阐明了可能的气候状况,并诊断了控制大气喷射流,Hadley和Ferrel细胞的形成以及纬向温度差异的机制。最后,我们讨论了理解大气环流如何影响全球气候的含义。

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