期刊
ASTROPHYSICAL JOURNAL
卷 695, 期 2, 页码 1257-1272出版社
IOP PUBLISHING LTD
DOI: 10.1088/0004-637X/695/2/1257
关键词
hydrodynamics; nuclear reactions, nucleosynthesis, abundances; supernovae: general
Observational evidences point to a common explosion mechanism of Type Ia supernovae based on a delayed detonation of a white dwarf (WD). However, all attempts to find a convincing ignition mechanism based on a delayed detonation in a destabilized, expanding, white dwarf have been elusive so far. One of the possibilities that has been invoked is that an inefficient deflagration leads to pulsation of a Chandrasekhar-mass WD, followed by formation of an accretion shock that confines a carbon-oxygen rich core, while transforming the kinetic energy of the collapsing halo into thermal energy of the core, until an inward moving detonation is formed. This chain of events has been termed Pulsating Reverse Detonation (PRD). In this work, we present three-dimensional numerical simulations of PRD models from the time of detonation initiation up to homologous expansion. Different models characterized by the amount of mass burned during the deflagration phase, M-defl, give explosions spanning a range of kinetic energies, K similar to (1.0-1.2) x 10(51) erg, and Ni-56 masses, M(Ni-56) similar to 0.6-0.8 M-circle dot, which are compatible with what is expected for typical Type Ia supernovae. Spectra and light curves of angle-averaged spherically symmetric versions of the PRD models are discussed. Type Ia supernova spectra pose the most stringent requirements on PRD models.
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