论文标题

关于朝向非平面盘的结构和质量输送

On the structure and mass delivery towards circumplanetary discs

论文作者

Schulik, Matthäus, Johansen, Anders, Bitsch, Bertram, Lega, Elena, Lambrechts, Michiel

论文摘要

周围是年轻气体巨头周围形成的圆盘(CPD),被认为是月球形成的地点,也是供应天然气巨头生长的气体的中间储层。这种CPD的物理特性如何受到行星质量的影响以及整体不透明度的理解相对较少。为了澄清这一点,我们使用全球辐射流体动力法规Fargoca,其网格结构允许解决行星重力电位,以充分良好地形成CPD。然后,我们研究了随着行星质量,不透明度和潜在深度而出现的气流和密度/温度结构。我们的结果表明,木星质量行星在低不透明的情况下进行了有趣的结构形成,随后我们对此进行了详细分析。使用比ISM粉尘低100倍的不透明度水平,我们的木星质量原始球星的信封具有足够冷的信封,形成了CPD,并且一个将CPD和偶然性盘的自由下落区域出现。有趣的是,这个自由落体区域似乎是对外膜材料超音速侵蚀的结果,而不是人们期望在低不粘液处期望的静态结构形成。我们的分析表明,行星螺旋臂似乎构成了一个明显的压力屏障,需要通过辐射冷却来克服,以使气体自由倒在CPD上。 CPD内部的循环是近二次的,并且通过CPD螺旋臂的存在进行了修改。对于高度的不熟悉性,我们从文献中恢复了结果,从本质上找到了一个毫无特色的热信封。通过这项工作,我们在3D辐射流体动力学设置中展示了原始球星的完整脱离过程的首次模拟和分析。

Circumplanetary discs (CPDs) form around young gas giants and are thought to be the sites of moon formation as well as an intermediate reservoir of gas that feeds the growth of the gas giant. How the physical properties of such CPDs are affected by the planetary mass and the overall opacity is relatively poorly understood. In order to clarify this, we use the global radiation hydrodynamics code FARGOCA, with a grid structure that allows resolving the planetary gravitational potential sufficiently well for a CPD to form. We then study the gas flows and density/temperature structures that emerge as a function of planet mass, opacity and potential depth. Our results indicate interesting structure formation for Jupiter-mass planets at low opacities, which we subsequently analyse in detail. Using an opacity level that is 100 times lower than that of ISM dust, our Jupiter-mass protoplanet features an envelope that is sufficiently cold for a CPD to form, and a free-fall region separating the CPD and the circumstellar disc emerges. Interestingly, this free-fall region appears to be a result of supersonic erosion of outer envelope material, as opposed to the static structure formation that one would expect at low opacities. Our analysis reveals that the planetary spiral arms seem to pose a significant pressure barrier that needs to be overcome through radiative cooling in order for gas to free-fall onto the CPD. The circulation inside the CPD is near-keplerian and modified by the presence of CPD spiral arms. For high opacities we recover results from the literature, finding an essentially featureless hot envelope. With this work, we demonstrate the first simulation and analysis of a complete detachment process of a protoplanet from its parent disc in a 3D radiation hydrodynamics setting.

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