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Auteurs principaux: Serna, Javier, Pinzón, Giovanni, Hernández, Jesús, Manzo-Martínez, Ezequiel, Mauco, Karina, Román-Zúñiga, Carlos G., Calvet, Nuria, Briceño, Cesar, López-Valdivia, Ricardo, Kounkel, Marina, Stringfellow, Guy S., Stassun, Keivan G., Pinsonneault, Marc, Adame, Lucia, Cao, Lyra, Covey, Kevin, Bayo, Amelia, Roman-Lopes, Alexandre, Nitschelm, Christian, Lane, Richard R.
Format: Preprint
Publié: 2024
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Accès en ligne:https://arxiv.org/abs/2403.07505
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author Serna, Javier
Pinzón, Giovanni
Hernández, Jesús
Manzo-Martínez, Ezequiel
Mauco, Karina
Román-Zúñiga, Carlos G.
Calvet, Nuria
Briceño, Cesar
López-Valdivia, Ricardo
Kounkel, Marina
Stringfellow, Guy S.
Stassun, Keivan G.
Pinsonneault, Marc
Adame, Lucia
Cao, Lyra
Covey, Kevin
Bayo, Amelia
Roman-Lopes, Alexandre
Nitschelm, Christian
Lane, Richard R.
author_facet Serna, Javier
Pinzón, Giovanni
Hernández, Jesús
Manzo-Martínez, Ezequiel
Mauco, Karina
Román-Zúñiga, Carlos G.
Calvet, Nuria
Briceño, Cesar
López-Valdivia, Ricardo
Kounkel, Marina
Stringfellow, Guy S.
Stassun, Keivan G.
Pinsonneault, Marc
Adame, Lucia
Cao, Lyra
Covey, Kevin
Bayo, Amelia
Roman-Lopes, Alexandre
Nitschelm, Christian
Lane, Richard R.
contents We developed a grid of stellar rotation models for low-mass and solar-type Classical T Tauri stars (CTTS) ($0.3M_{\odot}<M_{\ast}<1.2M_{\odot}$). These models incorporate the star-disk interaction and magnetospheric ejections to investigate the evolution of the stellar rotation rate as a function of the mass of the star $M_{\ast}$, the magnetic field ($B_{\ast}$), and stellar wind ($\dot{M}_{wind}$). We compiled and determined stellar parameters for 208 CTTS, such as projected rotational velocity $v\sin(i)$, mass accretion rate $\dot{M}_{acc}$, stellar mass $M_{\ast}$, ages, and estimated rotational periods using TESS data. We also estimated a representative value of the mass-loss rate for our sample using the $[\text{O}\text{ I}]$ spectral line. Our results confirm that $v\sin(i)$ measurements in CTTS agree with the rotation rates provided by our spin models in the accretion-powered stellar winds (APSW) picture. In addition, we used the Approximate Bayesian Computation (ABC) technique to explore the connection between the model parameters and the observational properties of CTTS. We find that the evolution of $v\sin(i)$ with age might be regulated by variations in (1) the intensity of $B_{\ast}$ and (2) the fraction of the accretion flow ejected in magnetic winds, removing angular momentum from these systems. The youngest stars in our sample ($\sim $1 Myr) show a median branching ratio $\dot{M}_{wind}/\dot{M}_{acc}\sim$ $0.16$ and median $B_{\ast}\sim$ 2000 G, in contrast to $\sim 0.01$ and 1000 G, respectively, for stars with ages $\gtrsim 3$ Myr.
format Preprint
id arxiv_https___arxiv_org_abs_2403_07505
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Rotational Evolution of Classical T Tauri Stars: Models and Observations
Serna, Javier
Pinzón, Giovanni
Hernández, Jesús
Manzo-Martínez, Ezequiel
Mauco, Karina
Román-Zúñiga, Carlos G.
Calvet, Nuria
Briceño, Cesar
López-Valdivia, Ricardo
Kounkel, Marina
Stringfellow, Guy S.
Stassun, Keivan G.
Pinsonneault, Marc
Adame, Lucia
Cao, Lyra
Covey, Kevin
Bayo, Amelia
Roman-Lopes, Alexandre
Nitschelm, Christian
Lane, Richard R.
Solar and Stellar Astrophysics
Earth and Planetary Astrophysics
We developed a grid of stellar rotation models for low-mass and solar-type Classical T Tauri stars (CTTS) ($0.3M_{\odot}<M_{\ast}<1.2M_{\odot}$). These models incorporate the star-disk interaction and magnetospheric ejections to investigate the evolution of the stellar rotation rate as a function of the mass of the star $M_{\ast}$, the magnetic field ($B_{\ast}$), and stellar wind ($\dot{M}_{wind}$). We compiled and determined stellar parameters for 208 CTTS, such as projected rotational velocity $v\sin(i)$, mass accretion rate $\dot{M}_{acc}$, stellar mass $M_{\ast}$, ages, and estimated rotational periods using TESS data. We also estimated a representative value of the mass-loss rate for our sample using the $[\text{O}\text{ I}]$ spectral line. Our results confirm that $v\sin(i)$ measurements in CTTS agree with the rotation rates provided by our spin models in the accretion-powered stellar winds (APSW) picture. In addition, we used the Approximate Bayesian Computation (ABC) technique to explore the connection between the model parameters and the observational properties of CTTS. We find that the evolution of $v\sin(i)$ with age might be regulated by variations in (1) the intensity of $B_{\ast}$ and (2) the fraction of the accretion flow ejected in magnetic winds, removing angular momentum from these systems. The youngest stars in our sample ($\sim $1 Myr) show a median branching ratio $\dot{M}_{wind}/\dot{M}_{acc}\sim$ $0.16$ and median $B_{\ast}\sim$ 2000 G, in contrast to $\sim 0.01$ and 1000 G, respectively, for stars with ages $\gtrsim 3$ Myr.
title Rotational Evolution of Classical T Tauri Stars: Models and Observations
topic Solar and Stellar Astrophysics
Earth and Planetary Astrophysics
url https://arxiv.org/abs/2403.07505