论文标题

原月经磁盘中凝血不稳定性的非线性结果I:外部半径上加速粉尘生长和灰尘浓度的第一次数值研究

Nonlinear Outcome of Coagulation Instability in Protoplanetary Disks I: First Numerical Study of Accelerated Dust Growth and Dust Concentration at Outer Radii

论文作者

Tominaga, Ryosuke T., Kobayashi, Hiroshi, Inutsuka, Shu-ichiro

论文摘要

我们以前的线性分析提出了由原行星磁盘中的灰尘凝结驱动的新不稳定性。凝血不稳定性有可能将灰尘晶粒集中在环上,并有助于粉尘凝结和行星形成。在这一系列论文中,我们进行了数值模拟,并研究了凝血不稳定性的非线性结果。在本文(论文I)中,我们首先进行局部模拟以证明凝血不稳定性的存在。在模拟中观察到的线性生长与先前的线性分析非常吻合。接下来,我们进行径向全球模拟,以证明由于粉尘生长而导致内而外的磁盘演化过程会发展。为了隔离对粉尘浓度和生长的各种影响,我们忽略了纸质磁盘和灰尘碎片的影响I。这种简化的模拟表明,反应或碎片化不是通过不稳定的局部粉尘浓度的前提。在大多数运行中,湍流较弱,通过凝结不稳定的尘埃浓度克服了由于径向漂移而导致的灰尘耗竭,从而导致形成多个灰尘环。凝血不稳定性的非线性发展也加速了灰尘的生长,并且无量纲的停止时间$τ_ {\ mathrm {s}} $即使在Outeradii(> 10 au)也达到了统一。因此,凝血不稳定性是保留灰尘晶粒并加速尘埃生长以外的一个有前途的过程。

Our previous linear analysis presents a new instability driven by dust coagulation in protoplanetary disks. The coagulation instability has the potential to concentrate dust grains into rings and assist dust coagulation and planetesimal formation. In this series of papers, we perform numerical simulations and investigate nonlinear outcome of coagulation instability. In this paper (Paper I), we first conduct local simulations to demonstrate the existence of coagulation instability. Linear growth observed in the simulations is in good agreement with the previous linear analysis. We next conduct radially global simulations to demonstrate that coagulation instability develops during the inside-out disk evolution due to dust growth. To isolate the various effects on dust concentration and growth, we neglect effects of backreaction to a gas disk and dust fragmentation in Paper I. This simplified simulation shows that either of backreaction or fragmentation is not prerequisite for local dust concentration via the instability. In most runs with weak turbulence, dust concentration via coagulation instability overcomes dust depletion due to radial drift, leading to the formation of multiple dust rings. The nonlinear development of coagulation instability also accelerates dust growth, and the dimensionless stopping time $τ_{\mathrm{s}}$ reaches unity even at outer radii (>10 au). Therefore, coagulation instability is one promising process to retain dust grains and to accelerate dust growth beyond the drift barrier.

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