论文标题
站在巨人的肩膀上:与梅萨相结合的进化,星言和流体动力学模拟的新质量和距离估计值
Standing on the shoulders of giants: New mass and distance estimates for Betelgeuse through combined evolutionary, asteroseismic, and hydrodynamical simulations with MESA
论文作者
论文摘要
我们通过借鉴新观测数据和三种不同的建模技术来对附近的红色超级槟榔进行严格的检查。我们的观察结果包括在Betelgeuse最近的前所未有的DIMMing事件之前,使用空间基SMEI仪器收集的新的,处理过的光度测量值的释放。我们检测到光度数据中的第一个径向泛音,并报告$ 185 \ pm13.5 $ d的期间。我们的理论预测包括由多次演化,振荡和流体动力学模拟的自洽结果,该模块是针对恒星天体物理学(MESA)软件套件进行实验的模块进行的。我们的建模工作的重要成果包括对恒星半径的精确预测:$ 764^{+116} _ { - 62} r _ {\ odot} $。在与其他约束的协同时,这使我们能够得出一个新的独立距离估计,$ 168^ {+27} _ { - 15} $ PC和$π= 5.95^ {+0.58} _ { - 0.58} _ { - 0.85} $ MAS,与Hipparcos的良好同意,但与最近的无广播测量值较少同意。地震的结果是扰动的静液压和进化的流体动力模拟限制了贝特尔吉乌斯在新方式上的占主导地位的时期和驱动机制。我们的分析汇总得出的结论是,Betelgeuse的$ \ 400美元的日期是在基本模式下脉动的结果,这是由$κ$机制驱动的。基于网格的水动力建模表明,振荡包膜的行为是质量依赖性的,同样表明非线性脉动激发时间可以作为质量约束。我们的结果将$α$ ori定在红色超级分支的底部附近的核心氦燃烧阶段。我们报告的当今质量为$ 16.5 $ - $ 19〜m _ {\ odot} $ ----略低于典型的文献值。
We conduct a rigorous examination of the nearby red supergiant Betelgeuse by drawing on the synthesis of new observational data and three different modeling techniques. Our observational results include the release of new, processed photometric measurements collected with the space-based SMEI instrument prior to Betelgeuse's recent, unprecedented dimming event. We detect the first radial overtone in the photometric data and report a period of $185\pm13.5$ d. Our theoretical predictions include self-consistent results from multi-timescale evolutionary, oscillatory, and hydrodynamic simulations conducted with the Modules for Experiments in Stellar Astrophysics (MESA) software suite. Significant outcomes of our modeling efforts include a precise prediction for the star's radius: $764^{+116}_{-62} R_{\odot}$. In concert with additional constraints, this allows us to derive a new, independent distance estimate of $168^ {+27}_{-15}$ pc and a parallax of $π=5.95^{+0.58}_{-0.85}$ mas, in good agreement with Hipparcos but less so with recent radio measurements. Seismic results from both perturbed hydrostatic and evolving hydrodynamic simulations constrain the period and driving mechanisms of Betelgeuse's dominant periodicities in new ways. Our analyses converge to the conclusion that Betelgeuse's $\approx 400$ day period is the result of pulsation in the fundamental mode, driven by the $κ$-mechanism. Grid-based hydrodynamic modeling reveals that the behavior of the oscillating envelope is mass-dependent, and likewise suggests that the non-linear pulsation excitation time could serve as a mass constraint. Our results place $α$ Ori definitively in the core helium-burning phase near the base of the red supergiant branch. We report a present-day mass of $16.5$--$19 ~M_{\odot}$---slightly lower than typical literature values.