论文标题

更新了银河经典头孢菌的理论时期年龄和周期颜色关系:GAIA DR2样本的应用

Updated theoretical Period-Age and Period-Age-Color relations for Galactic Classical Cepheids: an application to the Gaia DR2 sample

论文作者

De Somma, Giulia, Marconi, Marcella, Cassisi, Santi, Ripepi, Vincenzo, Leccia, Silvio, Molinaro, Roberto, Musella, Ilaria

论文摘要

结合了更新的进化和脉动模型预测,以解释Gaia数据版本中银河系经典头孢菌素的特性。特别是,不稳定性条边界的位置以及连接脉冲期与本质上的脉冲阶段的分析关系的位置,并将其与进化的轨道相结合,并与派生的循环相关,并在准确的范围内,并在范围内进行准确的时期,并在范围内进行了循环,并在第一个时期内,并将脉冲之间的参数结合在一起 - 太阳化学丰度模式($ z $ = $ 0.02 $,$ y $ = $ 0.28 $)。所采用的理论框架考虑了核心氦气燃烧阶段的质量 - 光度关系的可能变化,这是由于核心对流对流过度交响和/或质量损失效率的变化以及对超级糖对对流效率的不同假设所致的不稳定性剥离界限的影响。推断的年龄和周期颜色关系应用于基本和第一个倾斜的Gaia Cepheids的选定样本,并得出了各种采用的理论场景的个体年龄。检索到的年龄分布证实,脉冲模型计算中超绝热对流效率的变化具有可忽略不计的效果,而通过轻度的过度旋转,旋转或质量损失产生的更明亮的质量亮度关系意味着明显年龄较大的年龄预测。此外,在较大的半乳酸距离处发现了较旧的头孢菌素,而第一个泛音头齿状虫比基本的头孢虫更古老。文献中与独立年龄分布分析的比较支持当前理论框架的预测能力。

Updated evolutionary and pulsational model predictions are combined in order to interpret the properties of Galactic Classical Cepheids in the Gaia Data Release 2. In particular, the location of the instability strip boundaries and the analytical relations connecting pulsation periods to the intrinsic stellar parameters are combined with evolutionary tracks to derive reliable and accurate period-age, and the first theoretical period-age-color relations in the Gaia bands for a solar chemical abundance pattern ($Z$=$0.02$, $Y$=$0.28$). The adopted theoretical framework takes into account possible variations in the mass-luminosity relation for the core helium-burning stage as due to changes in the core convective overshooting and/or mass loss efficiency, as well as the impact on the instability strip boundaries due to different assumptions for superadiabatic convection efficiency. The inferred period-age and period-age-color relations are applied to a selected sample of both fundamental and first overtone Gaia Cepheids, and individual ages for the various adopted theoretical scenarios are derived. The retrieved age distributions confirm that a variation in the efficiency of superadiabatic convection in the pulsational model computations has a negligible effect, whereas a brighter Mass-Luminosity relation, as produced by mild overshooting, rotation or mass loss, implies significantly older age predictions. Moreover, older Cepheids are found at larger Galactocentric distances, while first overtone Cepheids are found to be systematically older than the fundamental ones. The comparison with independent age distribution analysis in literature supports the predictive capability of current theoretical framework.

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