论文标题
潮湿的脉动在序列序列$δ$ scuti二进制RS CHA中
Tidally perturbed pulsations in the pre-main sequence $δ$ Scuti binary RS Cha
论文作者
论文摘要
二进制中的恒星成分受到影响星空特性的潮汐力。已经报道了针对不同物体的潮汐脉动,但这些都不是其前进化前序列阶段。这使得RS CHA由两个$δ$ Scuti恒星组成,并具有受潮汐效应影响的脉动特征,这是第一个这样的物体。我们旨在根据潮湿的脉动理论来研究黯然失色的二进制RS CHA的脉动特性。基于从苔丝卫星获得的光度时间序列,我们使用Phoebe进行了二进制建模来解释二进制光曲线,并允许研究RS CHA中这两个组件的脉动。我们用线性模式的叠加对脱落的光曲线进行了建模。然后将这些频率解释为潮汐力扰动的自动模式。我们找到了潮湿模式的证据,这可以识别脉动模式。 RS CHA主要展示偶极模式,而一种突出的$ L = 2 $或$ L = 3 $模式也被推断出。后者验证了光谱时间序列的先前结果。这项工作表明,RS CHA是测试潮湿搏动理论在星空建模框架内的理想候选者。使用该理论对多种脉动模式的识别是前所未有的,将是前序列序列的Asterosemology的基石。但是,轨道阶段中的光比变化引起的振幅调制也起着重要作用,这可能使模式识别复杂化。
Stellar components in binaries are subject to tidal forces which influence asteroseismic properties. Tidally pertubed pulsations have been reported for different objects but none of these are in their pre-main sequence phase of evolution. This makes RS Cha, consisting of two $δ$ Scuti stars and with pulsational characteristics influenced by tidal effects , the first such object observed. We aim to investigate the pulsational properties of the eclipsing binary RS Cha in terms of the theory of tidally perturbed pulsations. Based on photometric time series obtained from the TESS satellite, we performed binary modelling using PHOEBE to interpret the binary light curve and to allow the investigation of the pulsations of both components in RS Cha. We modelled the detrended light curve with the superposition of linear modes. The frequencies were then interpreted as self excited modes perturbed by tidal forces. We find evidence for tidally perturbed modes, which enables the identification of pulsation modes. RS Cha mainly exhibits dipole modes, while one prominent $l=2$ or $l=3$ mode is also inferred. The latter verifies previous results from spectroscopic time series. This work shows that RS Cha is an ideal candidate to test the theory of tidally perturbed pulsations within the framework of asteroseismic modelling. The identification of multiple pulsation modes using this theory is unprecedented and will be a keystone in the future of pre-main sequence asteroseismology. However, amplitude modulation caused by the changing light ratio during the orbital phase in an eclipsing binary also plays a significant role, which can complicate mode identification.