论文标题

垂直冷却时间的垂直剪切不稳定性的两个饱和状态

Two saturated states of the vertical shear instability in protoplanetary disks with vertically varying cooling times

论文作者

Fukuhara, Yuya, Okuzumi, Satoshi, Ono, Tomohiro

论文摘要

原星盘的湍流在尘埃演化和行星形成中起重要作用。垂直剪切不稳定性(VSI)是可以在外盘区域产生湍流的候选水动力机制之一。除垂直剪切外,VSI还需要快速冷却。线性稳定性分析表明,VSI可能无法在气体冷却效率低下的中平面周围运行。在这项研究中,我们研究了具有线性VSI稳定中平面区域的磁盘中VSI的非线性结果。我们对轴对称磁盘进行二维全局流体动力学模拟,并具有垂直变化的冷却时间。垂直冷却时间曲线确定了线性VSI稳定的中平面层的厚度,以及中平面上方和下方的不稳定层。我们发现中平面稳定层的厚度决定了非线性饱和状态下VSI驱动的湍流的垂直结构。我们确定了两种类型的最终饱和状态:(1)T状态以垂直湍流运动渗透到VSI稳定的中平面层和(2)PT状态为特征的T状态,其特征是限制在不稳定层中的湍流运动。当中平面VSI稳定层比两个气体尺度高时,PT状态将实现。我们还发现,当位于中平面上方和下方的VSI Unstable区域比两个气体尺度高的高度较薄时,VSI驱动的湍流在所有高度都受到了抑制。我们提出了经验公式,该公式可预测VSI驱动的湍流的强度,这是不稳定和稳定层厚度的函数。这些公式将有助于研究如何同时控制磁盘冷却效率的VSI驱动湍流和粉尘晶粒。

Turbulence in protoplanetary disks plays an important role in dust evolution and planetesimal formation. The vertical shear instability (VSI) is one of the candidate hydrodynamic mechanisms that can generate turbulence in the outer disk regions. The VSI requires rapid gas cooling in addition to vertical shear. A linear stability analysis suggests that the VSI may not operate around the midplane where gas cooling is inefficient. In this study, we investigate the nonlinear outcome of the VSI in disks with a linearly VSI-stable midplane region. We perform two-dimensional global hydrodynamical simulations of an axisymmetric disk with vertically varying cooling times. The vertical cooling time profile determines the thicknesses of the linearly VSI-stable midplane layer and unstable layers above and below the midplane. We find that the thickness of the midplane stable layer determines the vertical structure of VSI-driven turbulence in the nonlinear saturated state. We identify two types of final saturated state: (1) T states characterized by vertical turbulent motion penetrating into the VSI-stable midplane layer and (2) pT states characterized by turbulent motion confined in the unstable layers. The pT states are realized when the midplane VSI-stable layer is thicker than two gas scale heights. We also find that the VSI-driven turbulence is largely suppressed at all heights when the VSI-unstable region lying above and below the midplane is thinner than two gas scale heights. We present empirical formulas that predict the strength of VSI-driven turbulence as a function of the thicknesses of the unstable and stable layers. These formulas will be useful for studying how VSI-driven turbulence and dust grains controlling the disk cooling efficiency evolve simultaneously.

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