Anti-Solar Differential Rotation May Have Revived Magnetic Braking in the Subgiant 31 Aquilae

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Hauptverfasser: Metcalfe, Travis S., van Saders, Jennifer L., Ayres, Thomas R., Buzasi, Derek, Drake, Jeremy J., Egeland, Ricky, Garcia, Rafael A., Kochukhov, Oleg, Saar, Steven H., Stassun, Keivan G., Basu, Sarbani, Ong, J. M. Joel, Stokholm, Amalie, Bedding, Timothy R., Breton, Sylvain N., Ilyin, Ilya V., Petit, Pascal, Pinsonneault, Marc H., Strassmeier, Klaus G.
Format: Preprint
Veröffentlicht: 2026
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author Metcalfe, Travis S.
van Saders, Jennifer L.
Ayres, Thomas R.
Buzasi, Derek
Drake, Jeremy J.
Egeland, Ricky
Garcia, Rafael A.
Kochukhov, Oleg
Saar, Steven H.
Stassun, Keivan G.
Basu, Sarbani
Ong, J. M. Joel
Stokholm, Amalie
Bedding, Timothy R.
Breton, Sylvain N.
Ilyin, Ilya V.
Petit, Pascal
Pinsonneault, Marc H.
Strassmeier, Klaus G.
author_facet Metcalfe, Travis S.
van Saders, Jennifer L.
Ayres, Thomas R.
Buzasi, Derek
Drake, Jeremy J.
Egeland, Ricky
Garcia, Rafael A.
Kochukhov, Oleg
Saar, Steven H.
Stassun, Keivan G.
Basu, Sarbani
Ong, J. M. Joel
Stokholm, Amalie
Bedding, Timothy R.
Breton, Sylvain N.
Ilyin, Ilya V.
Petit, Pascal
Pinsonneault, Marc H.
Strassmeier, Klaus G.
contents Recent observations have shown that sufficiently slow rotation disrupts the organization of large-scale magnetic field in older main-sequence stars, leading to weakened magnetic braking (WMB) and a collapse in the efficiency of the global stellar dynamo. Recent simulations predict a shift from solar-like to anti-solar differential rotation (DR) at slower rotation rates, which typically do not occur on the main-sequence due to WMB. However, physical expansion on the subgiant branch can eventually slow the stellar rotation beyond this threshold, yielding a non-cycling large-scale field that revives magnetic braking. We combine asteroseismology from the Transiting Exoplanet Survey Satellite (TESS) with spectropolarimetry from the Large Binocular Telescope (LBT) to test these predictions in the old metal-rich subgiant 31 Aql. The LBT observations reveal a strong large-scale magnetic field in this star, and archival measurements of its chromospheric emission over 50 years confirm that it is non-cycling, as predicted. The star exhibits a variety of rotation periods during different observing seasons, consistent with DR but with no means of distinguishing between solar-like and anti-solar patterns. We incorporate the TESS observations to estimate the current wind braking torque of 31 Aql, demonstrating that it supports revived magnetic braking in this old subgiant. We also use rotational evolution modeling to place a preliminary constraint on the stellar Rossby number for the transition to anti-solar DR. Future refinements in both asteroseismic observations and rotational modeling may yield improvements to this initial analysis.
format Preprint
id arxiv_https___arxiv_org_abs_2603_17001
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Anti-Solar Differential Rotation May Have Revived Magnetic Braking in the Subgiant 31 Aquilae
Metcalfe, Travis S.
van Saders, Jennifer L.
Ayres, Thomas R.
Buzasi, Derek
Drake, Jeremy J.
Egeland, Ricky
Garcia, Rafael A.
Kochukhov, Oleg
Saar, Steven H.
Stassun, Keivan G.
Basu, Sarbani
Ong, J. M. Joel
Stokholm, Amalie
Bedding, Timothy R.
Breton, Sylvain N.
Ilyin, Ilya V.
Petit, Pascal
Pinsonneault, Marc H.
Strassmeier, Klaus G.
Solar and Stellar Astrophysics
Recent observations have shown that sufficiently slow rotation disrupts the organization of large-scale magnetic field in older main-sequence stars, leading to weakened magnetic braking (WMB) and a collapse in the efficiency of the global stellar dynamo. Recent simulations predict a shift from solar-like to anti-solar differential rotation (DR) at slower rotation rates, which typically do not occur on the main-sequence due to WMB. However, physical expansion on the subgiant branch can eventually slow the stellar rotation beyond this threshold, yielding a non-cycling large-scale field that revives magnetic braking. We combine asteroseismology from the Transiting Exoplanet Survey Satellite (TESS) with spectropolarimetry from the Large Binocular Telescope (LBT) to test these predictions in the old metal-rich subgiant 31 Aql. The LBT observations reveal a strong large-scale magnetic field in this star, and archival measurements of its chromospheric emission over 50 years confirm that it is non-cycling, as predicted. The star exhibits a variety of rotation periods during different observing seasons, consistent with DR but with no means of distinguishing between solar-like and anti-solar patterns. We incorporate the TESS observations to estimate the current wind braking torque of 31 Aql, demonstrating that it supports revived magnetic braking in this old subgiant. We also use rotational evolution modeling to place a preliminary constraint on the stellar Rossby number for the transition to anti-solar DR. Future refinements in both asteroseismic observations and rotational modeling may yield improvements to this initial analysis.
title Anti-Solar Differential Rotation May Have Revived Magnetic Braking in the Subgiant 31 Aquilae
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2603.17001