论文标题

金属性对组合恒星和磁盘进化的影响

The influence of metallicity on a combined stellar and disk evolution

论文作者

Gehrig, L., Steindl, T., Vorobyov, E. I., Guadarrama, R., Zwintz, K.

论文摘要

吸积盘的影响对于理解年轻恒星的演变至关重要。在组合演化期间,恒星和磁盘参数相互影响,激发了组合的恒星和磁盘模型。这是一个组合的数值模型,将磁盘与恒星一起发展,这是研究早期恒星进化进展的下一个逻辑步骤。我们旨在了解金属性对T〜Tauri阶段中积聚磁盘和恒星自旋进化的影响。我们将流体动力磁盘的数值处理与出色的进化相结合,包括出色的自旋模型,从而可以对单个组件之间的后反应进行自洽计算。我们介绍了与恒星磁盘相连的T-Tauri恒星的自洽理论演变。我们发现,与太阳金属性对应物相比,低金属环境中的磁盘具有不同的加热,并且寿命较短。恒星半径的差异,恒星半径的收缩率以及较短的磁盘寿命会导致低金属性恒星的旋转速度更快。我们为在低金属簇中观察到的短磁盘寿命提供了另外的解释。我们的模型与以前的研究(例如,基于金属性的光蒸发)的结合可以帮助理解磁盘的演化和不同金属性的分散。此外,出色的自旋进化模型包括以前被忽略的几种重要效果(例如,恒星磁场强度和磁盘寿命的现实计算),我们激励将结果包括为进一步的旋转演化模型的初始或输入参数,涵盖了朝向和主序列期间的恒星进化。

The effects of an accretion disk are crucial to understanding the evolution of young stars. During the combined evolution, stellar and disk parameters influence each other, motivating a combined stellar and disk model. This makes a combined numerical model, evolving the disk alongside the star, the next logical step in the progress of studying early stellar evolution. We aim to understand the effects of metallicity on the accretion disk and the stellar spin evolution during the T~Tauri phase. We combine the numerical treatment of a hydrodynamic disk with stellar evolution, including a stellar spin model, allowing a self-consistent calculation of the back-reactions between the individual components. We present the self-consistent theoretical evolution of T-Tauri stars coupled to a stellar disk. We find that disks in low metallicity environments are heated differently and have shorter lifetimes, compared to their solar metallicity counterparts. Differences in stellar radii, the contraction rate of the stellar radius, and the shorter disk lifetimes result in faster rotation of low metallicity stars. We present an additional explanation for the observed short disk lifetimes in low metallicity clusters. A combination of our model with previous studies (e.g., a metallicity-based photo-evaporation) could help to understand disk evolution and dispersal at different metallicities. Furthermore, the stellar spin evolution model includes several important effects, previously ignored (e.g., the stellar magnetic field strength and a realistic calculation of the disk lifetime) and we motivate to include our results as initial or input parameters for further spin evolution models, covering the stellar evolution towards and during the main sequence.

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