论文标题
经典脉动器中的恒星光球电离前相互作用:观察到的周期颜色关系的理论解释
The stellar photosphere-hydrogen ionization front interaction in Classical Pulsators: a theoretical explanation for observed period-colour relations
论文作者
论文摘要
周期彩色和振幅彩色(PCAC)关系可用于探测外膜结构的流体动力以及头孢虫和RR抒情诗的进化状态。在这项工作中,我们将PCAC关系纳入了RR Lyraes,Bl her,W vir和经典的头脑中的PCAC关系中,其中涉及氢离子阵线(HIF)和Stellar Photosphere的相互作用以及恒星进化的理论。发现使用OGLE-IV数据的RR Lyraes和经典头孢菌素的PC关系与该理论一致:RR Lyraes在最小/最大光中具有浅/倾斜的关系,而长期($ p> 10美元$ days)cepheids Cepheids cepheids在最大/最大光线下表现出坡度/平坦的PC关系。可以根据HIF和Stellar Photosphere的相对位置来解释CepheID和RR Lyraes的PC关系差异,该位置取决于它们在HR图上的位置。我们还使用OGLE-IV数据扩展了银河膨胀,LMC和SMC中II型头孢菌素的PCAC关系的分析。我们发现BL她的星星以最大和最小的光线倾斜了PC关系,类似于短期($ p <10美元)经典的头孢虫。 W Vir恒星在最小/最大光线上表现出倾斜/平坦的PC关系,类似于长期经典的头孢虫。我们还使用MESA中的径向恒星脉动代码来计算RR Lyraes的最先进的1D辐射流体动力学模型,并使用radial恒星脉动代码,以进一步从理论上进一步测试这些想法,并发现该模型通常与这张图片一致。因此,我们能够在各种可变恒星类型中以最大和最小的光线解释PC关系。
Period-colour and amplitude-colour (PCAC) relations can be used to probe both the hydrodynamics of outer envelope structure and evolutionary status of Cepheids and RR Lyraes. In this work, we incorporate the PCAC relations for RR Lyraes, BL Her, W Vir and classical Cepheids in a single unifying theory that involves the interaction of the hydrogen ionization front (HIF) and stellar photosphere and the theory of stellar evolution. PC relations for RR Lyraes and classical Cepheids using OGLE-IV data are found to be consistent with this theory: RR Lyraes have shallow/sloped relations at minimum/maximum light whilst long-period ($P>10$ days) Cepheids exhibit sloped/flat PC relations at minimum/maximum light. The differences in the PC relations for Cepheids and RR Lyraes can be explained based on the relative location of the HIF and stellar photosphere which changes depending on their position on the HR diagram. We also extend our analysis of PCAC relations for type II Cepheids in the Galactic bulge, LMC and SMC using OGLE-IV data. We find that BL Her stars have sloped PC relations at maximum and minimum light similar to short-period ($P<10$ days) classical Cepheids. W Vir stars exhibit sloped/flat PC relation at minimum/maximum light similar to long-period classical Cepheids. We also compute state-of-the-art 1D radiation hydrodynamic models of RR Lyraes, BL Her and classical Cepheids using the radial stellar pulsation code in MESA to further test these ideas theoretically and find that the models are generally consistent with this picture. We are thus able to explain PC relations at maximum and minimum light across a broad spectrum of variable star types.