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Related papers: X-ray emission from magnetic massive stars

200 papers

Galactic superwinds may be driven by very hot outflows generated by overlapping supernovae within the host galaxy. We use the Chevalier & Clegg (CC85) wind model and the observed correlation between X-ray luminosities of galaxies and their…

Astrophysics of Galaxies · Physics 2015-06-17 Dong Zhang , Todd A. Thompson , Norman Murray , Eliot Quataert

Context. Stellar spin-down is the result of a complex process involving rotation, dynamo, wind and magnetism. Multi-wavelength surveys of solar-like stars have revealed the likely existence of relationships between their rotation, X-ray…

Solar and Stellar Astrophysics · Physics 2020-04-01 Jérémy Ahuir , Allan-Sacha Brun , Antoine Strugarek

We discuss X-ray line formation in dense O star winds. A random distribution of wind shocks is assumed to emit X-rays that are partially absorbed by cooler wind gas. The cool gas resides in highly compressed fragments oriented perpendicular…

Astrophysics · Physics 2011-05-23 Achim Feldmeier , Lida Oskinova , Wolf-Rainer Hamann

Massive stars, at least $\sim$ 10 times more massive than the Sun, have two key properties that make them the main drivers of evolution of star clusters, galaxies, and the Universe as a whole. On the one hand, the outer layers of massive…

The evolution of X-ray emission from young massive star clusters is modeled, taking into account the emission from the stars as well as from the cluster wind. It is shown that the level and character of the soft (0.2-10 keV) X-ray emission…

Astrophysics · Physics 2009-11-11 L. M. Oskinova

High spectral resolution and long exposure times are providing unprecedented levels of data quality of massive stars at X-ray wavelengths. A key diagnostic of the X-ray emitting plasma are the fir lines for He-like triplets. In particular,…

Solar and Stellar Astrophysics · Physics 2019-06-19 R. Ignace , Z. Damrau , K. T. Hole

X-ray emission from stars much more massive than the Sun was discovered only 35 years ago. Such stars drive fast stellar winds where shocks can develop, and it is commonly assumed that the X-rays emerge from the shock-heated plasma. Many…

Solar and Stellar Astrophysics · Physics 2014-06-05 Lidia M. Oskinova , Yael Naze , Helge Todt , David P. Huenemoerder , Richard Ignace , Swetlana Hubrig , Wolf-Rainer Hamann

High-resolution X-ray spectra of high-mass stars and low-mass T-Tauri stars obtained during the first year of the Chandra mission are providing important clues about the mechanisms which produce X-rays on very young stars. For zeta Puppis…

Astrophysics · Physics 2007-05-23 Marc Gagne , David Cohen , Stanley Owocki , Asif Ud-Doula

Hot stars emit large amounts of X-rays, which are assumed to originate in the supersonic stellar wind. Part of the emitted X-rays is subsequently absorbed in the wind and influences its ionization state. Because hot star winds are driven…

Solar and Stellar Astrophysics · Physics 2016-07-27 Jiri Krticka , Jiri Kubat

Inspired by the excess soft X-ray emission recently detected in Green Pea galaxies, we model the soft X-ray emission (0.5 - 2.0 keV) of hot gas from star cluster winds. By combining individual star clusters, we estimate the soft X-ray…

(abridged) Non-degenerate stars of essentially all spectral classes are soft X-ray sources. Low-mass stars on the cooler part of the main sequence and their pre-main sequence predecessors define the dominant stellar population in the galaxy…

Solar and Stellar Astrophysics · Physics 2009-08-11 M. Guedel , Y. Naze

The clumping of massive star winds is an established paradigm, which is confirmed by multiple lines of evidence and is supported by stellar wind theory. We use the results from time-dependent hydrodynamical models of the instability in the…

Solar and Stellar Astrophysics · Physics 2015-06-11 L. M. Oskinova , A. Feldmeier , P. Kretschmar

To test the cooling flow model of early-type galaxies, we obtained a complete magnitude-limited sample of 34 early-type galaxies, observed with the PSPC and HRI on ROSAT. The X-ray to optical distribution of galaxies implies a lower…

Astrophysics · Physics 2009-10-30 Beth A. Brown , Joel N. Bregman

The X-ray emission from a simulated massive stellar cluster is investigated. The emission is calculated from a 3D hydrodynamical model which incorporates the mechanical feedback from the stellar winds of 3 O-stars embedded in a giant…

Solar and Stellar Astrophysics · Physics 2015-06-19 H. Rogers , J. M. Pittard

The Chandra X-ray Observatory grating spectrometers allow study of stellar spectra at resolutions on the order of 1000. Prior x-ray observatories' low resolution data have shown that nearly all classes of stars emit x-rays. Chandra reveals…

Astrophysics · Physics 2009-11-10 David P. Huenemoerder

We present a study of the X-ray properties of a sample of six nearby late-type spiral galaxies based on XMM-Newton observations. Since our primary focus is on the linkage between X-ray emission and star formation in extended, extranuclear…

Astrophysics of Galaxies · Physics 2015-05-13 R. A. Owen , R. S. Warwick

Context: X-ray surveys carried out with the Einstein and ROSAT satellites have resulted in rather unexpected detections of X-ray emission from late B-type and early A-type stars. These stars possess neither winds like early-type stars nor…

Astrophysics · Physics 2009-11-13 S. Czesla , J. H. H. M. Schmitt

We investigate the degree to which the nearly symmetric form of X-ray emission lines seen in Chandra spectra of early-type supergiant stars could be explained by a possibly porous nature of their spatially structured stellar winds. Such…

Astrophysics · Physics 2008-11-26 Stanley P. Owocki , David H. Cohen

In wind-powered X-ray binaries, the radiatively driven stellar wind from the primary may be inhibited by the X-ray irradiation. This creates the feedback that limits the X-ray luminosity of the compact secondary. Wind inhibition might be…

Solar and Stellar Astrophysics · Physics 2018-12-12 Jiri Krticka , Jiri Kubat , Iva Krtickova

Both stars and planets can lose mass through an expansive wind outflow, often constrained or channeled by magnetic fields that form a surrounding magnetosphere. The very strong winds of massive stars are understood to be driven by…

Solar and Stellar Astrophysics · Physics 2022-11-01 Stan Owocki