论文标题

在径向速度时间序列中建模恒星振荡和颗粒化:一种基于傅立叶的方法

Modeling Stellar Oscillations and Granulation in Radial Velocity Time Series: A Fourier-based Method

论文作者

Guo, Zhao, Ford, Eric B., Stello, Dennis, Luhn, Jacob K., Mahadevan, Suvrath, Gupta, Arvind F., Yu, Jie

论文摘要

空间任务已经观察到数万个太阳能振荡恒星。它们在傅立叶结构域中的光度变异性可以通过两个超级 - 朗属函数的总和来进行参数化,以用于颗粒,而高斯形的功率过量进行振荡。具有恒星参数的光度颗粒/振荡参数尺度,它们还可以预测径向速度测量中的相应参数。基于缩放关系,我们模拟了逼真的径向速度时间序列,并检查径向速度测量的根平方散射如何随恒星参数和不同的观察策略(例如时间序列中的整合时间和间隙)而变化。使用光谱仪(歌曲和竖琴)的恒星具有广泛的光谱观测,我们从径向速度时间序列的功率谱中测量了颗粒幅度和时间尺度。我们将这些测量值与基于开普勒光度法的文献值进行比较。我们发现,可以从光度法和缩放关系中很好地预测径向速度的颗粒幅度。径向速度中的两个颗粒时间尺度都与巨人和亚巨头的光度法预测的时间尺度一致。然而,对于主要序列恒星,径向速度中只有一个颗粒时间尺度与基于光度的值一致,而其他时间尺度通常位于较低的频率中,与光度法相比。总之,我们显示了从开普勒光度法和多普勒观测的缩放关系的光度缩放关系对于预测由于出色的粒度和振荡而导致的光度和径向速度恒星变异性非常有用。

Tens of thousands of solar-like oscillating stars have been observed by space missions. Their photometric variability in the Fourier domain can be parameterized by a sum of two super-Lorentizian functions for granulation and a Gaussian-shaped power excess for oscillation. The photometric granulation/oscillation parameters scale with stellar parameters and they can also make predictions for corresponding parameters in radial velocity measurements. Based on scaling relations, we simulate realistic radial velocity time series and examine how the root-mean-square scatter of radial velocity measurements varies with stellar parameters and different observation strategies such as the length of integration time and gaps in the time series. Using stars with extensive spectroscopic observations from the spectrographs (SONG and HARPS), we measure the granulation amplitude and timescale from the power spectrum of the radial velocity time series. We compare these measurements with literature values based on Kepler photometry. We find that the granulation amplitude in radial velocity can be well predicted from the photometry and scaling relations. Both granulation timescales in radial velocity agree with those predicted from photometry for giants and sub-giants. However, for main-sequence stars, only one granulation timescale in radial velocity is in agreement with the photometric-based values, while the other timescale generally lies at lower frequencies compared to the result of photometry. In conclusion, we show the photometric scaling relations from Kepler photometry and the scaling relationship to Doppler observations can be very useful for predicting the photometric and radial velocity stellar variabilities due to stellar granulation and oscillation.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源