论文标题
改善了红色巨型表面旋转速率的英言反转
Improved asteroseismic inversions for red-giant surface rotation rates
论文作者
论文摘要
对内部恒星旋转的小星座观测表明,在次巨星和红色巨星的理论模型中,大大缺乏角动量转运。因此,需要精确的核心和表面旋转速率测量值来限制模型中包含的内部运输过程。我们消除了先前研究中发现的河sosic表面旋转率的严重系统误差。我们为红色巨星的最佳局部旋转反转方法提出了一个新的目标函数,这导致从相同数据获得的更准确的包络旋转速率估计值。我们使用来自恒星模型的合成观测值,范围内的一系列进化阶段和质量来证明改进。我们发现我们的新反转技术使我们能够获得与核心旋转无关的表面旋转速率的估计。对于红色巨型分支底部的一颗星星,假设恒定的包络旋转,我们将系统误差从约20%降低到接近0的值。我们还显示了这种方法与线性化旋转分离方法之间的等效性。我们的新旋转反演方法大大降低了红色巨型表面旋转速率的系统误差。结合对表面旋转速率的独立测量,这将允许在内部旋转曲线上设置更好的约束。这将是一个非常重要的探针,以进一步限制沿红色巨型分支下部的内部角动量转运。
Asteroseismic observations of internal stellar rotation have indicated a substantial lack of angular momentum transport in theoretical models of subgiant and red-giant stars. Accurate core and surface rotation rate measurements are therefore needed to constrain internal transport processes included in the models. We eliminate substantial systematic errors of asteroseismic surface rotation rates found in previous studies. We propose a new objective function for the Optimally Localized Averages method of rotational inversions for red-giant stars, which results in more accurate envelope rotation rate estimates obtained from the same data. We use synthetic observations from stellar models across a range of evolutionary stages and masses to demonstrate the improvement. We find that our new inversion technique allows us to obtain estimates of the surface rotation rate that are independent of the core rotation. For a star at the base of the red-giant branch, we reduce the systematic error from about 20% to a value close to 0, assuming constant envelope rotation. We also show the equivalence between this method and the method of linearised rotational splittings. Our new rotational inversion method substantially reduces the systematic errors of red-giant surface rotation rates. In combination with independent measures of the surface rotation rate, this will allow better constraints to be set on the internal rotation profile. This will be a very important probe to further constrain the internal angular momentum transport along the lower part of the red-giant branch.