X-ray emission from pre-main sequence stars with multipolar magnetic fields
Kieran A. Stuart, Scott G. Gregory

TL;DR
This study models how increasing magnetic field complexity in pre-main sequence stars leads to a significant decrease in their X-ray luminosity, explaining observed evolutionary trends.
Contribution
It introduces coronal models with multipolar magnetic fields to quantify how magnetic topology affects X-ray emission in PMS stars.
Findings
X-ray luminosity decreases with higher multipole degree
Dipole plus octupole fields show reduced X-ray emission as octupole dominates
Magnetic complexity can cause two orders of magnitude variation in X-ray luminosity
Abstract
The large-scale magnetic fields of several pre-main sequence (PMS) stars have been observed to be simple and axisymmetric, dominated by tilted dipole and octupole components. The magnetic fields of other PMS stars are highly multipolar and dominantly non-axisymmetric. Observations suggest that the magnetic field complexity increases as PMS stars evolve from Hayashi to Henyey tracks in the Hertzsprung--Russell diagram. Independent observations have revealed that X-ray luminosity decreases with age during PMS evolution, with Henyey track PMS stars having lower fractional X-ray luminosities () compared to Hayashi track stars. We investigate how changes in the large-scale magnetic field topology of PMS stars influences coronal X-ray emission. We construct coronal models assuming pure axisymmetric multipole magnetic fields, and magnetic fields consisting of a dipole plus an…
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Taxonomy
TopicsStellar, planetary, and galactic studies · Solar and Space Plasma Dynamics · Astrophysics and Star Formation Studies
