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September 30, 20250 citationsOpen Access

Enhanced magnetic activity in rapidly rotating binary stars

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JYJie YuCGCharlotte GehanSHS. Hekker

Key Points

  • Enhanced magnetic activity is observed in binary stars, particularly those in spin-orbit resonance.
  • Chromospheric activity in binaries with rotation periods between 0.5 and 1 day exceeds saturation levels, indicating a dynamo effect.
  • This observational study highlights the impact of tidal forces on stellar activity, which may differ from that of single stars.
  • The findings suggest a need for further research on stellar activity mechanisms in extreme binary systems as compared to the Sun.

Abstract

Stellar activity is fundamental to stellar evolution and the formation and habitability of exoplanets. The interaction between convective motions and rotation in cool stars results in a dynamo process that drives magnetic surface activity. In single stars, activity increases with rotation rate until it saturates for stars with rotation periods Prot < 3 - 10 d. However, the mechanism responsible for saturation remains unclear. Observations indicate that red giants in binary systems that are in spin-orbit resonance exhibit stronger chromospheric activity than single stars with similar rotation rates, suggesting that tidal flows can influence surface activity. Here, we investigate the chromospheric activity of main-sequence binary stars to understand the impact of tidal forces on saturation phenomena. For binaries with 0. 5 < Prot/d < 1, mainly contact binaries that share a common thermal envelope, we find enhanced activity rather than saturation. This result supports theoretical predictions that a large-scale - dynamo during common-envelope evolution can generate strong magnetic fields. We also observe supersaturation in chromospheric activity, a phenomenon tentatively noted previously in coronal activity, where activity levels fall below saturation and decrease with shorter rotation periods. Our findings emphasise the importance of studying stellar activity in stars with extreme properties compared to the Sun's.

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Cite This Study

Yu et al. (2025) studied this question.

synapsesocial.com/papers/68dc12c58a7d58c25ebb09e5https://doi.org/10.48550/arxiv.2505.19967
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