During the spin-up phase of a large pulsar glitch - a sudden decrease of the rotational period of a neutron star - the angular velocity of the star may overshoot, namely reach values greater than that observed for the new post-glitch equilibrium. These transient phenomena are expected on the basis of theoretical models for pulsar internal dynamics, and their observation has the potential to provide an important diagnostic for glitch modelling. In this article, we present a simple criterion to assess the presence of an overshoot, based on the minimal analytical model that is able to reproduce an overshooting spin-up. We employed it to fit the data of the 2016 glitch of the Vela pulsar, obtaining estimates of the fractional moments of inertia of the internal superfluid components involved in the glitch, of the rise and decay timescales of the overshoot, and of the mutual friction parameters between the superfluid components and the normal one. We studied the cases with and without strong entrainment in the crust: in the former, we found an indication of a large inner core strongly coupled to the observable component, and of a reservoir of angular momentum extending into the core to densities below nuclear saturation; while in the latter, a large reservoir extending above nuclear saturation and a standard normal component without inner core were found.

Core and crust contributions in overshooting glitches: the Vela pulsar 2016 glitch / P.M. Pizzochero, A. Montoli, M. Antonelli. - In: ASTRONOMY & ASTROPHYSICS. - ISSN 0004-6361. - 636(2020 Apr 24). [10.1051/0004-6361/201937019]

Core and crust contributions in overshooting glitches: the Vela pulsar 2016 glitch

P.M. Pizzochero
Primo
;
A. Montoli
Secondo
;
M. Antonelli
Ultimo
2020

Abstract

During the spin-up phase of a large pulsar glitch - a sudden decrease of the rotational period of a neutron star - the angular velocity of the star may overshoot, namely reach values greater than that observed for the new post-glitch equilibrium. These transient phenomena are expected on the basis of theoretical models for pulsar internal dynamics, and their observation has the potential to provide an important diagnostic for glitch modelling. In this article, we present a simple criterion to assess the presence of an overshoot, based on the minimal analytical model that is able to reproduce an overshooting spin-up. We employed it to fit the data of the 2016 glitch of the Vela pulsar, obtaining estimates of the fractional moments of inertia of the internal superfluid components involved in the glitch, of the rise and decay timescales of the overshoot, and of the mutual friction parameters between the superfluid components and the normal one. We studied the cases with and without strong entrainment in the crust: in the former, we found an indication of a large inner core strongly coupled to the observable component, and of a reservoir of angular momentum extending into the core to densities below nuclear saturation; while in the latter, a large reservoir extending above nuclear saturation and a standard normal component without inner core were found.
stars: neutron; pulsars: general; pulsars: individual: J0835-4510; stars: rotation
Settore FIS/05 - Astronomia e Astrofisica
24-apr-2020
Article (author)
File in questo prodotto:
File Dimensione Formato  
Vela 2016 glitch (A&A 2020).pdf

accesso aperto

Tipologia: Publisher's version/PDF
Dimensione 368.5 kB
Formato Adobe PDF
368.5 kB Adobe PDF Visualizza/Apri
1910.00066.pdf

accesso aperto

Tipologia: Pre-print (manoscritto inviato all'editore)
Dimensione 387.46 kB
Formato Adobe PDF
387.46 kB Adobe PDF Visualizza/Apri
Pubblicazioni consigliate

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/741522
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 20
  • ???jsp.display-item.citation.isi??? 19
social impact