Weakened Magnetic Braking in the Exoplanet Host Star 51 Peg

T. S. Metcalfe, K. G. Strassmeier, Ilya Ilyin, D. Buzasi, O. Kochukhov, Thomas R. Ayres, S. Basu, A. Chontos, Adam J. Finley, Victor See, K. Stassun, J. V. van Saders, Aldo G. Sepulveda, G. Ricker
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Abstract

The consistently low activity level of the old solar analog 51 Peg not only facilitated the discovery of the first hot Jupiter, but also led to the suggestion that the star could be experiencing a magnetic grand minimum. However, the 50 yr time series showing minimal chromospheric variability could also be associated with the onset of weakened magnetic braking (WMB), where sufficiently slow rotation disrupts cycling activity and the production of large-scale magnetic fields by the stellar dynamo, thereby shrinking the Alfvén radius and inhibiting the efficient loss of angular momentum to magnetized stellar winds. In this Letter, we evaluate the magnetic evolutionary state of 51 Peg by estimating its wind braking torque. We use new spectropolarimetric measurements from the Large Binocular Telescope to reconstruct the large-scale magnetic morphology, we reanalyze archival X-ray measurements to estimate the mass-loss rate, and we detect solar-like oscillations in photometry from the Transiting Exoplanet Survey Satellite, yielding precise stellar properties from asteroseismology. Our estimate of the wind braking torque for 51 Peg clearly places it in the WMB regime, driven by changes in the mass-loss rate and the magnetic field strength and morphology that substantially exceed theoretical expectations. Although our revised stellar properties have minimal consequences for the characterization of the exoplanet, they have interesting implications for the current space weather environment of the system.
系外行星寄主星 51 Peg 的弱磁制动
古老的太阳类似物 51 Peg 的活动水平一直很低,这不仅为发现第一颗热木星提供了便利,而且还使人们认为这颗恒星可能正在经历磁性大极小期。然而,50 年的时间序列显示色球层变化极小,这也可能与弱磁制动(WMB)的开始有关,在弱磁制动中,足够慢的旋转会扰乱恒星动力机的循环活动和大尺度磁场的产生,从而缩小阿尔弗韦恩半径,抑制角动量向磁化恒星风的有效流失。在这封信中,我们通过估算51 Peg的风制动力矩来评估它的磁演化状态。我们利用大型双筒望远镜新的光谱测量结果重建了大尺度磁形态,重新分析了档案X射线测量结果以估算质量损失率,并从凌日系外行星巡天卫星的光度测量中探测到类似太阳的振荡,从而从小行星学中获得了精确的恒星属性。我们对 51 Peg 星风制动力矩的估算明确将其置于 WMB 机制中,其质量损失率、磁场强度和形态的变化大大超出了理论预期。尽管我们修订后的恒星属性对系外行星的特征描述影响甚微,但对该系统当前的空间天气环境却有着有趣的影响。
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