论文标题

行星气体积聚对原星盘间隙形状和深度的影响

Influence of planetary gas accretion on the shape and depth of gaps in protoplanetary discs

论文作者

Bergez-Casalou, C., Bitsch, B., Pierens, A., Crida, A., Raymond, S. N.

论文摘要

众所周知,巨型行星有能力在其出生的气态原球盘中打开深处。然而,尚不清楚气体吸收在生长的行星上如何影响其增长间隙的形状和深度。我们使用FARGO-2D1D代码进行了等温流体动力学模拟,该代码假设行星在全盘中积聚的气体在0.1至260 au之间。气体积聚常规使用水槽细胞方法,其中使用不同的积聚率来应对文献中引用的广泛的气体积聚率。我们发现,对于较大的圆盘纵横比和更大的粘度,行星气体积聚率会增加。我们的主要结果表明,气体积聚对差距的质量有重要影响:当碟片缓慢响应行星质量的变化(即低粘度下)时,具有差距开放的质量尺度,具有行星积聚速率,较高的气体积聚率会导致较高的气体积聚率,从而导致更大的空隙质量。另一方面,如果光盘响应时间很短(即在高粘度下),则气体积聚有助于地球雕刻出深空隙。结果,较高的行星气体积聚速率导致较小的空隙质量。我们的结果对从圆盘观测中衍生的行星质量具有重要意义:根据行星气体积聚率,来自ALMA观测的衍生质量可能会超出两倍。我们讨论了基于大钉情景的示例,差距开放质量的变化对行星系统演变的后果。行星气体积聚还会影响恒星气体积聚,由于存在气体固定的行星,影响很小。

It is widely known that giant planets have the capacity to open deep gaps in their natal gaseous protoplanetary discs. It is unclear, however, how gas accretion onto growing planets influences the shape and depth of their growing gaps. We performed isothermal hydrodynamical simulations with the Fargo-2D1D code, which assumes planets accreting gas within full discs that range from 0.1 to 260 AU. The gas accretion routine uses a sink cell approach, in which different accretion rates are used to cope with the broad range of gas accretion rates cited in the literature. We find that the planetary gas accretion rate increases for larger disc aspect ratios and greater viscosities. Our main results show that gas accretion has an important impact on the gap-opening mass: we find that when the disc responds slowly to a change in planetary mass (i.e., at low viscosity), the gap-opening mass scales with the planetary accretion rate, with a higher gas accretion rate resulting in a larger gap-opening mass. On the other hand, if the disc response time is short (i.e., at high viscosity), then gas accretion helps the planet carve a deep gap. As a consequence, higher planetary gas accretion rates result in smaller gap-opening masses. Our results have important implications for the derivation of planet masses from disc observations: depending on the planetary gas accretion rate, the derived masses from ALMA observations might be off by up to a factor of two. We discuss the consequences of the change in the gap-opening mass on the evolution of planetary systems based on the example of the grand tack scenario. Planetary gas accretion also impacts stellar gas accretion, where the influence is minimal due to the presence of a gas-accreting planet.

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