Catching the wisps: Stellar mass-loss limits from low-frequency radio observations

IF 6.1 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS Astronomy & Astrophysics Pub Date : 2025-03-18 DOI:10.1051/0004-6361/202452722
S. Bloot, H. K. Vedantham, R. D. Kavanagh, J. R. Callingham, B. J. S. Pope
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Abstract

The winds of low-mass stars carry away angular momentum and impact the atmospheres of surrounding planets. Determining the properties of these winds is necessary to understand the mass-loss history of the star and the evolution of exoplanetary atmospheres. Due to their tenuous nature, the winds of low-mass main-sequence stars are difficult to detect. The few existing techniques for measuring these winds are indirect, with the most common inference method for winds of low-mass stars being astrospheric Lyman-α absorption combined with complex hydrodynamical modelling of the interaction between the stellar wind and the interstellar medium. Here, we employ a more direct method to place upper limits on the mass-loss rates of low-mass stars by combining observations of low-frequency coherent radio emission, the lack of free-free absorption, and a simple stellar wind model. We determine upper limits on the mass-loss rate for a sample of 19 M dwarf stars detected with the LOFAR telescope at 120−168 MHz, reaching a sensitivity within an order of magnitude of the solar mass-loss rate for cold stars with a surface magnetic field strength of ∼100 G. The sensitivity of our method does not depend on distance or spectral type, allowing us to find mass-loss rate constraints for stars up to spectral type M6 and out to a distance of 50 pc, later and farther than previous measurements. With upcoming low-frequency surveys with both LOFAR and the Square Kilometre Array, the number of stars with mass-loss rate upper limits determined with this method could reach ∼1000.
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捕捉光束:低频无线电观测的恒星质量损失极限
低质量恒星的风带走了角动量,并影响了周围行星的大气层。确定这些风的性质对于了解恒星的质量损失历史和系外行星大气的演变是必要的。由于其脆弱的性质,低质量主序星的风很难被探测到。现有的一些测量这些风的技术是间接的,最常见的推断低质量恒星风的方法是天体层莱曼α吸收,结合恒星风与星际介质之间相互作用的复杂流体动力学模型。在这里,我们采用了一种更直接的方法,通过结合低频相干射电发射的观测,缺乏自由-自由吸收和一个简单的恒星风模型,来确定低质量恒星质量损失率的上限。我们确定上限的质量损失速率的样本检测19 M矮星LOFAR的望远镜在120−168 MHz,灵敏度达到一个数量级内太阳质量损失速率寒冷恒星的表面磁场强度∼100 g的敏感性,我们的方法不依赖于距离或光谱类型,允许我们寻找恒星质量损失速率约束谱M6型和50个人电脑的距离,比以前的测量更晚,更远。在LOFAR和平方公里阵列即将进行的低频巡天中,用这种方法确定的质量损失率上限的恒星数量可能达到~ 1000颗。
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来源期刊
Astronomy & Astrophysics
Astronomy & Astrophysics 地学天文-天文与天体物理
CiteScore
10.20
自引率
27.70%
发文量
2105
审稿时长
1-2 weeks
期刊介绍: Astronomy & Astrophysics is an international Journal that publishes papers on all aspects of astronomy and astrophysics (theoretical, observational, and instrumental) independently of the techniques used to obtain the results.
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