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Rotation periods and astrometric motions of the Luhman?16AB brown dwarfs by high-resolution lucky-imaging monitoring

机译:Luhman?16AB棕矮星的旋转周期和天体运动的高分辨率幸运成像监测

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Context. Photometric monitoring of the variability of brown dwarfs can provide useful information about the structure of clouds in their cold atmospheres.The brown-dwarf binary system Luhman?16AB is an interesting target for such a study, because its components stand at the L/T transition and show high levels of variability. Luhman?16AB is also the third closest system to the solar system, which allows precise astrometric investigations with ground-based facilities. Aims. The aim of the work is to estimate the rotation period and study the astrometric motion of both components. Methods. We have monitored Luhman?16AB over a period of two years with the lucky-imaging camera mounted on the Danish 1.54?m telescope at La Silla, through a special i + z long-pass filter, which allowed us to clearly resolve the two brown dwarfs into single objects. An intense monitoring of the target was also performed over 16 nights, in which we observed a peak-to-peak variability of 0.20 ± 0.02?mag and 0.34 ± 0.02?mag for Luhman?16A and 16B, respectively. Results. We used the 16-night time-series data to estimate the rotation period of the two components. We found that Luhman?16B rotates with a period of 5.1 ± 0.1?h, in very good agreement with previous measurements. For Luhman?16A, we report that it rotates more slowly than its companion, and even though we were not able to get a robust determination, our data indicate a rotation period of roughly 8?h. This implies that the rotation axes of the two components are well aligned and suggests a scenario in which the two objects underwent the same accretion process. The 2-year complete data set was used to study the astrometric motion of Luhman?16AB. We predict a motion of the system that is not consistent with a previous estimate based on two months of monitoring, but cannot confirm or refute the presence of additional planetary-mass bodies in the system.
机译:上下文。光度监测褐矮星的变异性可以提供有关寒冷大气中云结构的有用信息。褐矮星双星系统Luhman?16AB是此类研究的一个有趣目标,因为它的成分处于L / T转变。并显示出高水平的可变性。 Luhman?16AB也是与太阳系最接近的第三系统,它可以对地面设施进行精确的天文测量。目的这项工作的目的是估计旋转周期并研究两个组件的天体运动。方法。我们通过安装在La Silla丹麦1.54?m望远镜上的幸运成像相机,通过特殊的i + z长通滤镜,对Luhman?16AB进行了为期两年的监视,这使我们能够清楚地分辨出两个棕色矮化成单个对象。还对目标进行了严格的监控,持续了16个晚上,其中我们观察到Luhman?16A和16B的峰峰值变异性分别为0.20±0.02?mag和0.34±0.02?mag。结果。我们使用了16个晚上的时间序列数据来估计两个组件的轮换周期。我们发现Luhman?16B的旋转周期为5.1±0.1?h,与以前的测量非常吻合。对于Luhman?16A,我们报告说它的旋转速度比其同伴慢,并且即使我们无法做出可靠的确定,我们的数据也表明旋转周期大约为8?h。这意味着两个组件的旋转轴很好地对齐,并提出了两个对象经历相同吸积过程的情况。使用2年的完整数据集来研究Luhman?16AB的天体运动。我们基于两个月的监测,预测该系统的运动与先前的估计不一致,但是无法确认或驳斥系统中其他行星质量体的存在。

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