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Three years in the coronal life of AB Dor

2003/07/04 by J. Sanz‐Forcada, J. Sanz-Forcada, A. Maggio +1 · 1 citation
Engineering · Physics and Astronomy · #Astronomical Observations and Instrumentation #Astrophysics and Star Formation Studies #Stellar, planetary, and galactic studies #astro-ph

paper · pdf · doi:10.1051/0004-6361:20031025

published as Astron.Astrophys.408:1087-1102,2003 · Accepted by A&A

arxiv created 2003/07/04 · openalex publication_date 2003/09/01 · arxiv updated 2009/12/01 · openalex created_date 2022/09/21 · openalex updated_date 2026/07/31

Abstract

The young active star AB Dor (K1 IV-V) has been observed 16 times in the last three years with the XMM-Newton and Chandra observatories, totalling 650 ks of high-resolution X-ray spectra. The XMM/RGS observations with the highest and lowest average emission levels have been selected to study the coronal properties of AB Dor in two different activity levels. We compare the results based on the XMM data with those obtained from a higher resolution Chandra/HETG spectrum, using the same line-based analysis technique. We have reconstructed the plasma Emission Measure Distribution vs. temperature (EMD) in the range –7.6, and we have determined the coronal abundances of AB Dor, obtaining consistent results between the two instruments. The overall shape of the EMD is also consistent with the one previously inferred from EUVE data. The EMD shows a steep increase up to the peak at and a substantial amount of plasma in the range –7.3. The coronal abundances show a clear trend of increasing depletion with respect to solar photospheric values, for elements with increasing First Ionization Potential (FIP), down to the Fe value ([Fe/H] = –0.57), followed by a more gradual recovery of the photospheric values for elements with higher FIP. He-like triplets and and lines ratios indicate electron densities cm-3 at and cm-3 at , implying plasma pressures steeply increasing with temperature. These results are interpreted in the framework of a corona composed of different families of magnetic loop structures, shorter than the stellar radius and in isobaric conditions, having pressures increasing with the maximum plasma temperature, and which occupy a small fraction (–10-6) of the stellar surface.

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