热木星的云状热相曲线

V. Parmentier, A. Showman, J. Fortney
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引用次数: 56

摘要

热木星被预测有强烈的昼夜温度对比,并且热点向东移动。这一点通过探测大气的纵向亮度变化的大量相位曲线观测得到了证实。然而,全球环流模式系统地低估了相位曲线的振幅,高估了其最大值的位移。我们使用了一个包含非灰色辐射传输和真实气体和云不透明的全球环流模型,系统地研究了热木星的大气环流如何在平衡温度从1000到2200K之间变化。我们发现,在温度低于1600K的无云行星上,热传递非常有效,而在温度较高的行星上,热传递效率就会降低。当夜侧云层存在时,日-夜热传输变得极其低效,导致与观测到的夜侧低温度很好地匹配。然而,这种低温的稳定性是由于辐射时间标度与温度的强烈依赖。进一步表明,夜侧云增加了相位曲线的幅值,同时减小了相位曲线的偏移量。这种变化对云的化学成分和颗粒大小非常敏感,这意味着观测到的相曲线的多样性可以用夜侧云特性的多样性来解释。最后,我们证明了相位曲线参数并不一定跟踪昼夜对比和热点在等压线上的移动,并提出了恢复真实热点移动和昼夜对比的解决方案。
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The cloudy shape of hot Jupiter thermal phase curves
Hot Jupiters have been predicted to have a strong day/night temperature contrast and a hot spot shifted eastward of the substellar point. This was confirmed by numerous phase curve observations probing the longitudinal brightness variation of the atmosphere. Global circulation models, however, systematically underestimate the phase curve amplitude and overestimate the shift of its maximum. We use a global circulation model including non-grey radiative transfer and realistic gas and cloud opacities to systematically investigate how the atmospheric circulation of hot Jupiters varies with equilibrium temperature from 1000 to 2200K. We show that the heat transport is very efficient for cloudless planets cooler than 1600K and becomes less efficient at higher temperatures. When nightside clouds are present, the day-to-night heat transport becomes extremely inefficient, leading to a good match to the observed low nightside temperatures. The constancy of this low temperature is, however, due to the strong dependence of the radiative timescale with temperature. We further show that nightside clouds increase the phase curve amplitude and decreases the phase curve offset at the same time. This change is very sensitive to the cloud chemical composition and particle size, meaning that the diversity in observed phase curves can be explained by a diversity of nightside cloud properties. Finally, we show that phase curve parameters do not necessarily track the day/night contrast nor the shift of the hot spot on isobars, and propose solutions to to recover the true hot-spot shift and day/night contrast.
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