论文标题

TMC-1中的速度 - 连接子结构:流入和碎片化

Velocity-Coherent Substructure in TMC-1: Inflow and Fragmentation

论文作者

Smith, Simon E. T., Friesen, Rachel, Marchal, Antoine, Pineda, Jaime E., Caselli, Paola, Chen, Michael Chun-Yuan, Choudhury, Spandan, Di Francesco, James, Ginsburg, Adam, Kirk, Helen, Matzner, Chris, Punanova, Anna, Scibelli, Samantha, Shirley, Yancy

论文摘要

丝状结构在分子云中几乎无处不在,但它们的形成和进化仍然很少了解。我们检查了金牛座分子云1(TMC-1)的一部分,该段作为灰尘连续发射中的单个狭窄细丝。我们使用正常的优化进行超光谱分析(ROHSA),这是一种高斯分解算法,在同时拟合多个速度组件时,可以在数据立方体上同时拟合多个速度分量时会实现空间相干性。我们分析了HC $ _5 $ N(9-8)线排放,作为绿色银行氨调查(GAS)的一部分,并确定了三个带有Rohsa的速度相关组件。两个最亮的组件扩展了细丝的长度,而第三个成分则柔软且结块。最明亮的组件具有突出的横向速度梯度为$ 2.7 \ pm 0.1 $ km s $^{ - 1} $ pc $^{ - 1} $,我们表明是重力引起的流入。在第二个组件中,我们确定沿其长度的定期间隔发射峰。我们表明,相邻HC $ _5 $ n峰之间的局部最小值与亚毫米级连续峰峰紧密地排列,我们认为这是沿TMC-1脊柱碎片化的证据。虽然相干速度成分被描述为其他星形细丝中的独立物理结构,但我们认为,在hc $ _5 $ _5 $ n中鉴定出的两个明亮的成分在TMC-1中排放在一个丝状中是两个层中的两层:一个较低密度的外层,其材料在较高密度的内层材料的较高密度内部流动。

Filamentary structures have been found nearly ubiquitously in molecular clouds and yet their formation and evolution is still poorly understood. We examine a segment of Taurus Molecular Cloud 1 (TMC-1) that appears as a single, narrow filament in continuum emission from dust. We use the Regularized Optimization for Hyper-Spectral Analysis (ROHSA), a Gaussian decomposition algorithm which enforces spatial coherence when fitting multiple velocity components simultaneously over a data cube. We analyze HC$_5$N (9-8) line emission as part of the Green Bank Ammonia Survey (GAS) and identify three velocity-coherent components with ROHSA. The two brightest components extend the length of the filament, while the third component is fainter and clumpier. The brightest component has a prominent transverse velocity gradient of $2.7 \pm 0.1$ km s$^{-1}$ pc$^{-1}$ that we show to be indicative of gravitationally induced inflow. In the second component, we identify regularly spaced emission peaks along its length. We show that the local minima between pairs of adjacent HC$_5$N peaks line up closely with submillimetre continuum emission peaks, which we argue is evidence for fragmentation along the spine of TMC-1. While coherent velocity components have been described as separate physical structures in other star-forming filaments, we argue that the two bright components identified in HC$_5$N emission in TMC-1 are tracing two layers in one filament: a lower density outer layer whose material is flowing under gravity towards the higher density inner layer of the filament.

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