论文标题
具有偏心轨道的低质量行星周围的动态原始大气
The Dynamic Proto-atmospheres around Low-Mass Planets with Eccentric Orbits
论文作者
论文摘要
当嵌入气体原球磁盘中时,Protoplanets能够积聚原始大气。原始大气的形成和结构受到行星 - 盘环境和轨道效应的影响。特别是,当行星在偏心轨道上时,它们与气体的相对速度可能会超过声速。行星会产生大气层的弓形冲击。我们研究具有带辐射流动力学模拟的偏心轨道的低质量行星上的原始大气。建立了原始大气的2D辐射模型,并具有针对气体和尘埃的列表。该解决方案揭示了弓令人震动结构内的大规模气体回收。偏心行星上的大气通常比具有圆形轨道的行星的巨大数量较小。但是,总体而言,由于通过回收流的稳定气体供应,超音速环境有利于行星保持早期稳定的气氛而不是有害。我们还定量探讨了这种大气如何受到行星与气体,行星质量和背景气体密度的相对速度的影响。我们的时间依赖性模拟跟踪了原始大气的轨道演变,而行星 - 盘参数在整个轨道中都会发生变化。当行星在怪异轨道上行驶时,大气特性显示出振荡模式,并且相位滞后。总而言之,尽管弓形冲击的剥离作用,低质量的偏心行星仍可以保留小的原始大气。大气始终与磁盘气体连接并相互作用。这些发现提供了对迁移和散射对行星原始大气能的影响的重要见解。
Protoplanets are able to accrete primordial atmospheres when embedded in the gaseous protoplanetary disk. The formation and structure of the proto-atmosphere are subject to the planet--disk environment and orbital effects. Especially, when planets are on eccentric orbits, their relative velocities to the gas can exceed the sound speed. The planets generate atmosphere-stripping bow shocks. We investigate the proto-atmospheres on low-mass planets with eccentric orbits with radiation-hydrodynamics simulations. A 2D radiative model of the proto-atmosphere is established with tabulated opacities for the gas and dust. The solutions reveal large-scale gas recycling inside a bow shock structure. The atmospheres on eccentric planets are typically three to four orders of magnitude less massive than those of planets with circular orbits. Overall, however, a supersonic environment is favorable for planets to keep an early stable atmosphere, rather than harmful, due to the steady gas supply through the recycling flow. We also quantitatively explore how such atmospheres are affected by the relative velocity of the planet to the gas, the planet mass, and the background gas density. Our time-dependent simulations track the orbital evolution of the proto-atmosphere with the planet--disk parameters changing throughout the orbit. Atmospheric properties show oscillatory patterns as the planet travels on an eccentric orbit, with a lag in phase. To sum up, low-mass eccentric planets can retain small proto-atmospheres despite the stripping effects of bow shocks. The atmospheres are always connected to and interacting with the disk gas. These findings provide important insights into the impacts of migration and scattering on planetary proto-atmospheres.