论文标题
带有偏心轨道的陆地行星上的大气动力学
Atmospheric dynamics on terrestrial planets with eccentric orbits
论文作者
论文摘要
行星从其父颗恒星接收的日光度是气候的主要驱动力,取决于行星的轨道配置。具有非零倾斜和怪异的行星经历了季节性的破坏变化。结果,气候表现出季节性周期,其强度取决于轨道构型和大气特征。在这项研究中,使用理想的一般循环模型,我们检查了零倾斜行星和非零倾斜行星偏心率变化的气候反应。在零倾斜的情况下,太阳常数对偏心率变化的季节性反应与永久变化之间的比较表明,季节性反应在很大程度上取决于轨道时期和辐射时间尺度。更具体地说,使用简单的能量平衡模型,我们显示了气候响应中辐射时间尺度的纬度结构的重要性。我们还表明,响应在很大程度上取决于大气水分含量。偏心轨道与非零倾斜的组合是复杂的,因为无法进行,这也取决于围螺旋的位置。尽管涉及气候对偏心,倾斜度和近日的差异的详细响应涉及,但循环主要受热rossby数和最高温度纬度的约束。最后,我们讨论了影响气候响应对轨道配置变化的不同行星参数的重要性。
The insolation a planet receives from its parent star is the main driver of the climate and depends on the planet's orbital configuration. Planets with non-zero obliquity and eccentricity experience seasonal insolation variations. As a result, the climate exhibits a seasonal cycle, with its strength depending on the orbital configuration and atmospheric characteristics. In this study, using an idealized general circulation model, we examine the climate response to changes in eccentricity for both zero and non-zero obliquity planets. In the zero obliquity case, a comparison between the seasonal response to changes in eccentricity and perpetual changes in the solar constant shows that the seasonal response strongly depends on the orbital period and radiative timescale. More specifically, using a simple energy balance model, we show the importance of the latitudinal structure of the radiative timescale in the climate response. We also show that the response strongly depends on the atmospheric moisture content. The combination of an eccentric orbit with non-zero obliquity is complex, as the insolation also depends on the perihelion position. Although the detailed response of the climate to variations in eccentricity, obliquity, and perihelion is involved, the circulation is constrained mainly by the thermal Rossby number and the maximum temperature latitude. Finally, we discuss the importance of different planetary parameters that affect the climate response to orbital configuration variations.