论文标题

带有磁性风向积聚的层流盘的有效尘埃生长

Effective dust growth in laminar circumplanetary discs with magnetic wind-driven accretion

论文作者

Shibaike, Yuhito, Mori, Shoji

论文摘要

人们已经认为,围绕气体行星的大型卫星形成原位圆盘(CPD)。然而,在CPD中提供的尘埃颗粒在中央行星生长成卫星图和卫星的构建块之前向中央行星漂移。我们研究了具有磁风驱动积聚的层流CPD的尘埃生长。在这样的层流盘中,灰尘颗粒可以与经典的湍流CPD相比,通过相互碰撞更有效地沉降到中平面上。首先,我们对CPD进行3D局部MHD模拟,包括所有非理想的MHD效应(欧姆电阻率,霍尔效应和双相扩散)。我们调查了在可以从磁盘上发射磁盘风的情况下,磁盘积聚是否可以由磁风驱动的积聚以及光盘的层流控制。其次,我们对与MHD模拟的结果一致的1D稳定CPD进行建模,并计算建模盘中灰尘曲线的稳定径向分布,考虑到Kelvin-Hellmholtz不稳定性的碰撞生长,径向漂移,碎片和垂直搅拌。我们表明,如果流入盘的尘埃与气体质量比大于0.02,则卫星可能会在此类CPD中形成,这比湍流CPD中的临界值小50倍。当有足够的灰尘堆积在行星产生的气压凹凸处时,就可以满足这种情况。该结果表明,在带有磁风向积聚的层流CPD中会形成卫星。

It has been considered that large satellites around gas planets form in-situ circumplanetary discs (CPDs). However, dust particles supplied into CPDs drift toward the central planets before they grow into satellitesimals, building blocks of the satellites. We investigate the dust growth in laminar CPDs with magnetic wind-driven accretion. In such laminar discs, dust particles can settle onto the mid-plane and grow large by mutual collision more efficient than in classical turbulent CPDs. First, we carry out 3D local MHD simulations of a CPD including all the nonideal MHD effects (Ohmic resistivity, Hall effect and ambipolar diffusion). We investigate if the disc accretion can be governed by magnetic wind-driven accretion and how laminar the disc can be, in a situation where the magnetic disc wind can be launched from the disc. Second, we model 1D steady CPDs consistent with the results of the MHD simulations and calculate the steady radial distributions of the dust profiles in the modeled discs, taking account of the collisional growth, radial drift, fragmentation, and vertical stirring by the Kelvin-Helmholtz instability. We show that satellitesimals can form in such CPDs if the dust-to-gas mass ratio of the inflow to the discs is larger than 0.02, which is 50 times smaller than the critical value in turbulent CPDs. This condition can be satisfied when enough amount of dust piles up at the gas pressure bump created by the planets. This result shows that satellitesimals would form in laminar CPDs with magnetic wind-driven accretion.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源