论文标题
VLTI/Pionier的16个南部星星的精密角直径
Precision angular diameters for 16 southern stars with VLTI/PIONIER
论文作者
论文摘要
在盖亚(Gaia)的当前时代和噪声恒星光谱调查的大信号,基于准确的恒星直径,对可靠的基本校准有效温度的可靠库不满足。在这里,我们提供了一组精度直径和温度,用于在VLTI处使用Pionier Beam Combiner观察到的6个矮人,5个亚巨星和5个巨星。在至少两个序列中观察到科学目标,每个序列具有五个独特的校准星,可准确可见性校准并减少不良校准器的影响。我们使用标准的先锋数据减少管道,但是除了采用蒙特卡罗方法来解释相关误差外,通过对恒星参数,肢体变暗的系数和磁通量以及预测的校准校准器角透性来解决相关误差。然后将所得的直径与宽带河马 - tycho光度法得出的降压通量结合在一起,并将MARCS模型辐射校正校正,以及来自GAIA的视差可产生有效的温度,物理半径和亮度。我们的恒星具有平均角直径和温度不确定性分别为0.8%和0.9%,我们的样品包括10颗恒星的直径,没有预先存在的干涉测量。其余的恒星与先前的测量相一致,除了我们在这里以更高分辨率和更高灵敏度的单一恒星观察到的恒星比早期工作中所获得的恒星一致。
In the current era of Gaia and large, high signal to noise stellar spectroscopic surveys, there is an unmet need for a reliable library of fundamentally calibrated stellar effective temperatures based on accurate stellar diameters. Here we present a set of precision diameters and temperatures for a sample of 6 dwarf, 5 sub-giant, and 5 giant stars observed with the PIONIER beam combiner at the VLTI. Science targets were observed in at least two sequences with five unique calibration stars each for accurate visibility calibration and to reduce the impact of bad calibrators. We use the standard PIONIER data reduction pipeline, but bootstrap over interferograms, in addition to employing a Monte-Carlo approach to account for correlated errors by sampling stellar parameters, limb darkening coefficients, and fluxes, as well as predicted calibrator angular diameters. The resulting diameters were then combined with bolometric fluxes derived from broadband Hipparcos-Tycho photometry and MARCS model bolometric corrections, plus parallaxes from Gaia to produce effective temperatures, physical radii, and luminosities for each star observed. Our stars have mean angular diameter and temperatures uncertainties of 0.8% and 0.9% respectively, with our sample including diameters for 10 stars with no pre-existing interferometric measurements. The remaining stars are consistent with previous measurements, with the exception of a single star which we observe here with PIONIER at both higher resolution and greater sensitivity than was achieved in earlier work.