论文标题

嵌入式磁盘中的各向异性中心和下部结构形成

Anisotropic Infall and Substructure formation in Embedded Disks

论文作者

Kuznetsova, Aleksandra, Bae, Jaehan, Hartmann, Lee, Mac Low, Mordecai-Mark

论文摘要

在嵌入的来源周围发现的增生流的丝状性质表明,原始磁盘经历了从星形形成环境中的异源插入,这与在顶部的星形群集地层模拟中的增生行为一致。这可能会以环,间隙和螺旋形式产生磁盘子结构,并通过在两个嵌入式0/I及以后的II类源中的高分辨率成像调查来识别。我们介绍了各向异性中心的参数研究,该参数由数值模拟中吸积流到原始核心上的特性,并改变了传入流的相对特异性角动量及其流量几何形状。我们的结果表明,各向异性中心会散布磁盘,并很容易发射Rossby Wave不稳定性(RWI)。它在沉积材料的内部和外边缘形成涡流。这些涡旋驱动螺旋波和角动量传输,一些模型能够驱动与$α\ sim 10^{ - 2} $的粘度参数相对应的应力。所产生的方位角剪切形成强大的压力凸起,充当尘埃晶粒径向漂移的障碍,这是通过对漂移主导的尘埃演化的后处理计算所证明的。我们讨论了各向异性中心的自洽模型如何解释外部磁盘中毫米环的形成以及产生紧凑的灰尘磁盘,这与嵌入式来源的观察结果一致。

The filamentary nature of accretion streams found around embedded sources suggest that protostellar disks experience heterogenous infall from the star-forming environment, consistent with the accretion behavior onto star-forming cores in top-down star-cluster formation simulations. This may produce disk substructures in the form of rings, gaps, and spirals continuing to be identified by high-resolution imaging surveys in both embedded Class 0/I and later Class II sources. We present a parameter study of anisotropic infall, informed by the properties of accretion flows onto protostellar cores in numerical simulations, and varying the relative specific angular momentum of incoming flows as well as their flow geometry. Our results show that anisotropic infall perturbs the disk and readily launches the Rossby wave instability (RWI). It forms vortices at the inner and outer edge of the infall zone where material is deposited. These vortices drive spiral waves and angular momentum transport, with some models able to drive stresses corresponding to a viscosity parameter on the order of $α\sim 10^{-2}$. The resulting azimuthal shear forms robust pressure bumps that act as barriers to radial drift of dust grains, as demonstrated by post-processing calculations of drift-dominated dust evolution. We discuss how a self-consistent model of anisotropic infall can account for the formation of millimeter rings in the outer disk as well as producing compact dust disks, consistent with observations of embedded sources.

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