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首页> 外文期刊>Astronomy and astrophysics >A low-mass protostar’s disk-envelope interface: disk-shadowing evidence from ALMA DCO+ observations of VLA1623
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A low-mass protostar’s disk-envelope interface: disk-shadowing evidence from ALMA DCO+ observations of VLA1623

机译:低质量的原恒星的磁盘包络界面:ALMA DCO +对VLA1623的观察得出的磁盘影子证据

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Context. Historically, due to instrumental limitations and a lack of disk detections, the structure of the transition from the envelope to the rotationally supported disk has been poorly studied. This is now possible with ALMA through observations of CO isotopologues and tracers of freezeout. Class 0 sources are ideal for such studies given their almost intact envelope and young disk. Aims. The structure of the disk-envelope interface of the prototypical Class 0 source, VLA1623A, which has a confirmed Keplerian disk, is constrained through modeling and analysis of ALMA observations of DCO+ (3?2) and C18O (2?1) rotational lines. Methods. The physical structure of VLA1623 is obtained from the large-scale spectral energy distribution (SED) and continuum radiative transfer. An analytic model using a simple network coupled with radial density and temperature profiles is used as input for a 2D line radiative transfer calculation for comparison with the ALMA Cycle 0 12-m array and Cycle 2 ACA observations of VLA1623. Results. The DCO+ emission shows a clumpy structure bordering VLA1623A’s Keplerian disk. This suggests a cold ring-like structure at the disk-envelope interface. The radial position of the observed DCO+ peak is reproduced in our model only if the region’s temperature is between 11 K and 16 K, lower than expected from models constrained by continuum data and source SED. Altering the density profile has little effect on the DCO+ peak position, but increased density is needed to reproduce the observed C18O tracing the disk. Conclusions. The observed DCO+ (3?2) emission around VLA1623A is the product of shadowing of the envelope by the disk observed in C18O. Disk-shadowing causes a drop in the gas temperature outside of the disk on >200 AU scales, encouraging the production of deuterated molecules. This indicates that the physical structure of the disk-envelope interface differs from the rest of the envelope, highlighting the drastic impact that the disk has on the envelope and temperature structure. The results presented here show that DCO+ is an excellent cold temperature tracer.
机译:上下文。历史上,由于仪器的局限性和缺乏磁盘检测,从外壳到旋转支撑的磁盘的过渡结构研究得很少。 ALMA现在可以通过观察CO同位素和冻结示踪剂来实现这一点。鉴于其几乎完整的包膜和年轻的圆盘,0类源非常适合此类研究。目的原型0类源VLA1623A的磁盘-包络接口的结构具有确定的Keplerian磁盘,通过对DCO +(3?2)和C18O(2?1)旋转线的ALMA观测值进行建模和分析来约束。方法。 VLA1623的物理结构是从大规模光谱能量分布(SED)和连续辐射传输获得的。将使用简单网络与径向密度和温度曲线相结合的分析模型用作2D线辐射传递计算的输入,以与ALMA Cycle 0 12-m阵列和VLA1623的Cycle 2 ACA观测值进行比较。结果。 DCO +排放物呈块状结构,与VLA1623A的Keplerian圆盘接壤。这表明在磁盘-信封界面处有一个冷的环状结构。仅当区域温度在11 K和16 K之间,且低于连续数据和源SED约束的模型的期望值时,在我们的模型中才会复制观察到的DCO +峰的径向位置。更改密度分布图对DCO +峰位置几乎没有影响,但是需要增加密度才能重现观察到的C18O跟踪盘。结论。在VLA1623A周围观察到的DCO +(3?2)发射是在C18O中所观察到的圆盘遮蔽外壳的产物。磁盘遮蔽会导致磁盘外部的气体温度下降> 200 AU,从而促进氘化分子的产生。这表明磁盘-信封接口的物理结构与其余信封不同,突出显示了磁盘对信封和温度结构的剧烈影响。此处显示的结果表明DCO +是出色的低温示踪剂。

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