4.7 Article

The Evolution toward Electron Capture Supernovae: The Flame Propagation and the Pre-bounce Electron-Neutrino Radiation

Journal

ASTROPHYSICAL JOURNAL
Volume 871, Issue 2, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.3847/1538-4357/aaf8a8

Keywords

neutrinos-nuclear reactions; nucleosynthesis; abundances-stars: evolution-supernovae: general

Funding

  1. Japan Society for the Promotion of Science (JSPS) Overseas Research Fellowships
  2. Ministry of Education, Culture, Sports, Science and Technology (MEXT), Japan [26104006, 15K05093, 17H01130, 17K05380, 17H06357, 17H06365]
  3. K-computer of the RIKEN AICS
  4. Joint Institute for Computational Fundamental Sciences (JICFus)
  5. HPCI Strategic Program of Japanese MEXT, Priority Issue on Post-K computer (Elucidation of the Fundamental Laws and Evolution of the Universe)
  6. Grants-in-Aid for Scientific Research [17H01130, 17H06365, 15K05093, 17K05380] Funding Source: KAKEN

Ask authors/readers for more resources

A critical-mass ONe core with a high ignition density is considered to end in gravitational collapse leading to neutron star formation. Being distinct from an Fe core collapse, the final evolution involves combustion flame propagation, in which complex phase transition from ONe elements into the nuclear statistical equilibrium (NSE) state takes place. We simulate the core evolution from the O+Ne ignition until the bounce shock penetrates the whole core, using a state-of-the-art 1D Lagrangian neutrino radiation hydrodynamic code, in which important nuclear burning, electron capture, and neutrino reactions are taken into account. Special care is also taken in making a stable initial condition by importing the stellar equation of state, which is used for the progenitor evolution calculation, and by improving the remapping process. We find that the central ignition leads to intense nu(e) radiation with L-nu e greater than or similar to 10(51) erg s(-1) powered by fast electron captures onto NSE isotopes. This pre-bounce.e radiation heats the surroundings by the neutrino-electron scattering, which acts as a new driving mechanism of the flame propagation together with the adiabatic contraction. The resulting flame velocity of similar to 10(8) cm s(-1) will be more than one order of magnitude faster than that of a laminar flame driven by heat conduction. We also find that the duration of the pre-bounce.e radiation phase depends on the degree of the core hydrostatic/dynamical stability. Therefore, the future detection of the pre-bounce neutrino is important not only to discriminate the ONe core collapse from the Fe core collapse but also to constrain the progenitor hydrodynamical stability.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.7
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available