By means of numerical simulations, we investigate magnetized stellar winds of pre-main-sequence stars. In particular, we analyze under which circumstances these stars will present elongated magnetic features (e.g., helmet streamers, slingshot prominences, etc). We focus on weak-lined T Tauri stars, as the presence of the tenuous accretion disk is not expected to have strong influence on the structure of the stellar wind. We show that the plasma-beta parameter (the ratio of thermal to magnetic energy densities) is a decisive factor in defining the magnetic configuration of the stellar wind. Using initial parameters within the observed range for these stars, we show that the coronal magnetic field configuration can vary between a dipole-like ...
T Tauri stars are low mass, pre-main sequence stars, many of which are still surrounded by active ac...
The inner 0.1 AU around accreting T Tauri stars hold clues to many physical processes that character...
T-Tauri stars are late-type pre-main-sequence stars that are gravitationally contracting towards the...
By means of numerical simulations, we investigate magnetized stellar winds of pre-main-sequence star...
Based on our previous work, we investigate here the effects on the wind and magnetospheric structure...
International audienceContext. Classical T Tauri stars (CTTs) magnetically interact with their surro...
The most abundant stars in the universe - cool stars - have stellar winds. The importance of these m...
The magnetic fields of young stars set their coronal properties and control their spin evolution via...
The magnetic fields of young stars set their coronal properties and control their spin evolution via...
By means of self-consistent three-dimensional magnetohydrodynamics (MHD) numerical simulations, we a...
We perform three-dimensional numerical simulations of stellar winds of early-M-dwarf stars. Our simu...
We perform three-dimensional numerical simulations of stellar winds of early-M dwarf stars. Our simu...
Previous analyses of magnetospheric accretion and outflow in classical T Tauri stars (CTTSs), within...
T Tauri stars are low mass, pre-main sequence stars, many of which are still surrounded by active ac...
The inner 0.1 AU around accreting T Tauri stars hold clues to many physical processes that character...
T-Tauri stars are late-type pre-main-sequence stars that are gravitationally contracting towards the...
By means of numerical simulations, we investigate magnetized stellar winds of pre-main-sequence star...
Based on our previous work, we investigate here the effects on the wind and magnetospheric structure...
International audienceContext. Classical T Tauri stars (CTTs) magnetically interact with their surro...
The most abundant stars in the universe - cool stars - have stellar winds. The importance of these m...
The magnetic fields of young stars set their coronal properties and control their spin evolution via...
The magnetic fields of young stars set their coronal properties and control their spin evolution via...
By means of self-consistent three-dimensional magnetohydrodynamics (MHD) numerical simulations, we a...
We perform three-dimensional numerical simulations of stellar winds of early-M-dwarf stars. Our simu...
We perform three-dimensional numerical simulations of stellar winds of early-M dwarf stars. Our simu...
Previous analyses of magnetospheric accretion and outflow in classical T Tauri stars (CTTSs), within...
T Tauri stars are low mass, pre-main sequence stars, many of which are still surrounded by active ac...
The inner 0.1 AU around accreting T Tauri stars hold clues to many physical processes that character...
T-Tauri stars are late-type pre-main-sequence stars that are gravitationally contracting towards the...