论文标题

在金牛座地区多个系统中,对圆盘大小的圆盘大小的观察约束。 ii。气盘尺寸

Observational constraints on disc sizes in protoplanetary discs in multiple systems in the Taurus region. II. Gas disc sizes

论文作者

Rota, A. A., Manara, C. F., Miotello, A., Lodato, G., Facchini, S., Koutoulaki, M., Herczeg, G., Long, F., Tazzari, M., Cabrit, S., Harsono, D., Menard, F., Pinilla, P., van der Plas, G., Ragusa, E., Yen, H. -W.

论文摘要

多个恒星系统的形成是恒星形成过程的自然副产品,其对原星盘的特性以及对行星的形成的影响仍待完全了解。迄今为止,尚未对多个恒星系统周围的原星盘样品进行对气体排放的详细统一研究。在这里,我们在金牛座恒星形成区域的八个多个恒星系统中分析了$ \ sim $ 21 $ 21 AU的新ALMA观测值。 $^{12} $ CO气体排放围绕所有初选和七个同伴检测到。有了这些数据,我们估计所有主要盘和五个二级或第三圆盘的倾斜度和位置角度,并在空间分辨的零矩图像上使用累积通量技术测量这些物体的气盘半径。当考虑到包括95%通量的半径为度量时,发现多个恒星系统中的估计气盘尺寸平均比灰尘盘大小高4.2美元$ \ sim 4.2 $倍。该比率高于在更孤立和单一系统的人群中最近发现的比率。相反,当考虑到包括68 \%通量的半径时,在比率的分布中没有发现多盘和单盘之间的差异。这种差异是由于在多个恒星系统中观察到的外尘盘的急剧截断。测得的气盘尺寸与多个恒星系统中的潮汐截断模型一致,假设偏心率为$ \ sim0.15 $ - $ 0.5 $,如典型的二进制系统中所预期的。

The formation of multiple stellar systems is a natural by-product of the star-formation process, and its impact on the properties of protoplanetary discs and on the formation of planets is still to be fully understood. To date, no detailed uniform study of the gas emission from a sample of protoplanetary discs around multiple stellar systems has been performed. Here we analyse new ALMA observations at a $\sim$21 au resolution of the molecular CO gas emission targeting discs in eight multiple stellar systems in the Taurus star-forming regions. $^{12}$CO gas emission is detected around all primaries and in seven companions. With these data, we estimate the inclination and the position angle for all primary discs and for five secondary or tertiary discs, and measure the gas disc radii of these objects with a cumulative flux technique on the spatially resolved zeroth moment images. When considering the radius including 95\% of the flux as a metric, the estimated gas disc size in multiple stellar systems is found to be on average $\sim 4.2$ times larger than the dust disc size. This ratio is higher than what was recently found in a population of more isolated and single systems. On the contrary, when considering the radius including 68\% of the flux, no difference between multiple and single discs is found in the distribution of ratios. This discrepancy is due to the sharp truncation of the outer dusty disc observed in multiple stellar systems. The measured gas disc sizes are consistent with tidal truncation models in multiple stellar systems assuming eccentricities of $\sim0.15$-$0.5$, as expected in typical binary systems.

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