论文标题

低质量行星以三维风向无关光盘迁移:负旋转扭矩

Low-mass planet migration in three dimensional wind-driven inviscid discs: a negative corotation torque

论文作者

McNally, Colin P., Nelson, Richard P., Paardekooper, Sijme-Jan, Benitez-Llambay, Pablo, Gressel, Oliver

论文摘要

我们介绍了无粘性三维圆盘中低质量行星 - 碟片相互作用的模拟。我们表明,通过圆盘的表面层的风向层状积聚并不能显着改变嵌入行星经历的迁移扭矩。更重要的是,我们发现3D效应与早期的2D理论和仿真相比,动态旋转扭矩的行为发生了巨大变化。尽管以前表明,动力学旋转扭矩可以缓慢而基本上降低了低质量行星的内向迁移,但我们在3D中的结果表明,动力学旋转扭矩具有完全相反的效果,并且速度向内迁移。我们的数值实验暗示浮力共鸣是原因。这些有两个效果:(i)它们在行星上施加了直接的扭矩,在我们的模拟中测量了相对于lindblad扭矩的大小相对于lindblad扭矩很小; (ii)它们在旋转区域的马蹄形轨道上扭矩气体,并驱动其涡旋的演变,从而导致负动力学旋转扭矩。这表明,在低湍流粘度下,原星盘的详细垂直热结构在确定嵌入行星的迁移行为方面起着重要作用。如果该结果在圆盘热演化的更精致的处理下成立,那么它对理解行星系统的形成和早期演变具有重要意义。

We present simulations of low-mass planet--disc interactions in inviscid three-dimensional discs. We show that a wind-driven laminar accretion flow through the surface layers of the disc does not significantly modify the migration torque experienced by embedded planets. More importantly, we find that 3D effects lead to a dramatic change in the behaviour of the dynamical corotation torque compared to earlier 2D theory and simulations. Although it was previously shown that the dynamical corotation torque could act to slow and essentially stall the inward migration of a low-mass planet, our results in 3D show that the dynamical corotation torque has the complete opposite effect and speeds up inward migration. Our numerical experiments implicate buoyancy resonances as the cause. These have two effects: (i) they exert a direct torque on the planet, whose magnitude relative to the Lindblad torque is measured in our simulations to be small; (ii) they torque the gas librating on horseshoe orbits in the corotation region and drive evolution of its vortensity, leading to the negative dynamical corotation torque. This indicates that at low turbulent viscosity, the detailed vertical thermal structure of the protoplanetary disc plays an important role in determining the migration behaviour of embedded planets. If this result holds up under a more refined treatment of disc thermal evolution, then it has important implications for understanding the formation and early evolution of planetary systems.

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