论文标题
毫米差距对比度作为探针的湍流水平
Millimeter Gap Contrast as a Probe for Turbulence Level in Protoplanetary Disks
论文作者
论文摘要
据信湍流运动可以调节角动量的传输并影响原球门磁盘中的尘埃演化。由于需要高空间和光谱分辨率数据,并且对温度的精确测定,测量湍流强度是通过气线观测来挑战的。在这项工作中,以众所周知的HD 163296磁盘为例,我们研究了在高角度分辨率连续图像中鉴定出的间隙的对比度,以此作为对湍流水平的探针。借助自洽的辐射转移模型,我们同时分析了沿磁盘的主要轴和次要轴的径向亮度曲线,以及B67和B100环的方位角亮度曲线。 By fitting all the gap contrasts measured from these profiles, we constrained the gas-to-dust scale height ratio $Λ$ to be $3.0_{-0.8}^{+0.3}$, $1.2_{-0.1}^{+0.1}$ and ${\ge}\,6.5$ for the D48, B67 and B100 regions, respectively.变化的气体与盘状尺度比率表明,灰尘沉降的程度随半径变化。 $λ$的推断值转化为$α_ {\ rm turb} \,{<} \,3 \ times10^{ - 3} $在D48和B100区域中的湍流水平,这与燃气线观察设置的先前上限一致。但是,B67环中的动荡动作很强,$α_ {\ rm turb} \,{\ sim} 1.2 \,{\ times} \,10^{ - 2} $。由于$λ$与尘埃表面密度降低的深度之间的变性,D86间隙区域的湍流强度不受限制。
Turbulent motions are believed to regulate angular momentum transport and influence dust evolution in protoplanetary disks. Measuring the strength of turbulence is challenging through gas line observations because of the requirement for high spatial and spectral resolution data, and an exquisite determination of the temperature. In this work, taking the well-known HD 163296 disk as an example, we investigated the contrast of gaps identified in high angular resolution continuum images as a probe for the level of turbulence. With self-consistent radiative transfer models, we simultaneously analyzed the radial brightness profiles along the disk major and minor axes, and the azimuthal brightness profiles of the B67 and B100 rings. By fitting all the gap contrasts measured from these profiles, we constrained the gas-to-dust scale height ratio $Λ$ to be $3.0_{-0.8}^{+0.3}$, $1.2_{-0.1}^{+0.1}$ and ${\ge}\,6.5$ for the D48, B67 and B100 regions, respectively. The varying gas-to-dust scale height ratios indicate that the degree of dust settling changes with radius. The inferred values for $Λ$ translate into a turbulence level of $α_{\rm turb}\,{<}\,3\times10^{-3}$ in the D48 and B100 regions, which is consistent with previous upper limits set by gas line observations. However, turbulent motions in the B67 ring are strong with $α_{\rm turb}\,{\sim}1.2\,{\times}\,10^{-2}$. Due to the degeneracy between $Λ$ and the depth of dust surface density drops, the turbulence strength in the D86 gap region is not constrained.