Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Spectral and accretion evolution of H1743−322 during outbursts in RXTE era

View through CrossRef
Aims.We study the spectral evolution of the H1743−322 during outbursts in the RXTE era. We aim to connect the variation of the spectral parameters with the accretion parameters along with the progress of the outbursts. We understand the evolution of the accretion parameters and hence the dynamics of the accretion process in light of the irradiated disc instability model.Methods.We provide a comprehensive study of all the outbursts of H1743−322 between 2003 and 2011. We performed spectral modelling of all the RXTE/PCA observations using phenomenological models. Also, we carried out spectral modelling by a hydrodynamic accretion flow model and estimated the accretion parameters. We applied the irradiated disc instability scenario in the presence of both Keplerian and sub-Keplerain accretion components to understand the evolution of accretion parameters. For this purpose, we propose a toy model for the time variation of the accretion rates following a powerlaw during outbursts.Results.All of the outbursts show spectral state transitions in the hardness-intensity diagram. The 2003 and 2004 outbursts are long-duration outbursts and relatively softer than the other outbursts. The 2008b and 2011 outbursts provide a unique opportunity to estimate the critical accretion rate (ṁdc) for triggering an outburst in this system within a narrow range of 0.076 <ṁdc< 0.086 (in Eddington units). In the absence of any dynamical measurement, we attempt to constrain a few orbital parameters of the system using an assumed mass andṁdcin the range.
Title: Spectral and accretion evolution of H1743−322 during outbursts in RXTE era
Description:
Aims.
We study the spectral evolution of the H1743−322 during outbursts in the RXTE era.
We aim to connect the variation of the spectral parameters with the accretion parameters along with the progress of the outbursts.
We understand the evolution of the accretion parameters and hence the dynamics of the accretion process in light of the irradiated disc instability model.
Methods.
We provide a comprehensive study of all the outbursts of H1743−322 between 2003 and 2011.
We performed spectral modelling of all the RXTE/PCA observations using phenomenological models.
Also, we carried out spectral modelling by a hydrodynamic accretion flow model and estimated the accretion parameters.
We applied the irradiated disc instability scenario in the presence of both Keplerian and sub-Keplerain accretion components to understand the evolution of accretion parameters.
For this purpose, we propose a toy model for the time variation of the accretion rates following a powerlaw during outbursts.
Results.
All of the outbursts show spectral state transitions in the hardness-intensity diagram.
The 2003 and 2004 outbursts are long-duration outbursts and relatively softer than the other outbursts.
The 2008b and 2011 outbursts provide a unique opportunity to estimate the critical accretion rate (ṁdc) for triggering an outburst in this system within a narrow range of 0.
076 <ṁdc< 0.
086 (in Eddington units).
In the absence of any dynamical measurement, we attempt to constrain a few orbital parameters of the system using an assumed mass andṁdcin the range.

Related Results

Late accretion to Mercury: Global cratering, crust erosion, and accretion of exogenic materials
Late accretion to Mercury: Global cratering, crust erosion, and accretion of exogenic materials
Origin and dynamical evolution of Mercury during the early stage of planet formation are still poorly understood (e.g., Ebel and Stewart, 2018, and references therein). Regardless ...
Consequences for the early evolution of Venus from new simulations of atmosphere erosion by impacts.
Consequences for the early evolution of Venus from new simulations of atmosphere erosion by impacts.
Overview:We investigate how both late accretion and long-term evolution of Venus are affected by early volatile exchanges (outgassing, loss, delivery), using a set of numerical mod...
Accretion regimes and variability in young stars : imprints on UV photometry
Accretion regimes and variability in young stars : imprints on UV photometry
Régimes d'accrétion et variabilité dans les étoiles jeunes : apport de la photométrie UV Le processus d'accrétion joue un rôle crucial dans le scénario de formation...
The evolutionary pathway of polluted proto-planets
The evolutionary pathway of polluted proto-planets
. Introduction:In the traditional core accretion scenario, a planet grows by the subsequent accretion of a solid core and a gaseous envelope [3]. However, the accretion of these so...
Primordial thermal evolution of Galilean moons in the pebble accretion framework
Primordial thermal evolution of Galilean moons in the pebble accretion framework
The four larger satellites of Jupiter, with roughly comparable mass, are termed Galilean moons. They display (i) a water fraction that increases with dis- tance to Jupiter (ranging...
Multi-fluid hydrodynamical simulations of circumbinary planet formation via pebble accretion
Multi-fluid hydrodynamical simulations of circumbinary planet formation via pebble accretion
Context. Since the detection of the first known transiting circumbinary planet (CBP), Kepler-16b,by the Kepler mission, a total pf 14 CBPs have been detected, raising questions abo...
BASIC PHYSICAL MECHANISMS DURING MAXI J1535-571 OUTBURST EVOLUTION
BASIC PHYSICAL MECHANISMS DURING MAXI J1535-571 OUTBURST EVOLUTION
MAXI J1535-571 outburst on September 02, 2017. The accretion-flow constituents, Keplerian and subKeplerian flows, contain optically thick and optically thin plasma that explain the...
BASIC PHYSICAL MECHANISMS DURING MAXI J1535-571 OUTBURST EVOLUTION
BASIC PHYSICAL MECHANISMS DURING MAXI J1535-571 OUTBURST EVOLUTION
Shear-driven turbulence and rapid instabilities triggered outburst in MAXI J1535-571 accretion disk. The accretion-flow constituents explain the nature of X-ray emission. MAXI J153...

Back to Top