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  Self-consistent picture of the mass ejection from a one second-long binary neutron star merger leaving a short-lived remnant in general-relativistic neutrino-radiation magnetohydrodynamic simulation

Kiuchi, K., Fujibayashi, S., Hayashi, K., Kyutoku, K., Sekiguchi, Y., & Shibata, M. (2023). Self-consistent picture of the mass ejection from a one second-long binary neutron star merger leaving a short-lived remnant in general-relativistic neutrino-radiation magnetohydrodynamic simulation. Physical Review Letters, 131(1): 011401. doi:PhysRevLett.131.011401.

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 Urheber:
Kiuchi, Kenta1, Autor           
Fujibayashi, Sho1, Autor           
Hayashi, Kota, Autor
Kyutoku, Koutarou, Autor
Sekiguchi, Yuichiro, Autor
Shibata, Masaru1, Autor           
Affiliations:
1Computational Relativistic Astrophysics, AEI-Golm, MPI for Gravitational Physics, Max Planck Society, ou_2541714              

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Schlagwörter: Astrophysics, High Energy Astrophysical Phenomena, astro-ph.HE,General Relativity and Quantum Cosmology, gr-qc
 Zusammenfassung: We perform a general-relativistic neutrino-radiation magnetohydrodynamic
simulation of a one second-long binary neutron star merger on Japanese
supercomputer Fugaku using about $72$ million CPU hours with $20,736$ CPUs. We
consider an asymmetric binary neutron star merger with masses of $1.2$ and
$1.5M_\odot$ and a `soft' equation of state SFHo. It results in a short-lived
remnant with the lifetime of $\approx 0.017$\,s, and subsequent massive torus
formation with the mass of $\approx 0.05M_\odot$ after the remnant collapses to
a black hole. For the first time, we confirm that after the dynamical mass
ejection, which drives the fast tail and mildly relativistic components, the
post-merger mass ejection from the massive torus takes place due to the
magnetorotational instability-driven turbulent viscosity and the two ejecta
components are seen in the distributions of the electron fraction and velocity
with distinct features.

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 Datum: 2022-11-142023
 Publikationsstatus: Erschienen
 Seiten: 8 pages, 5 figure, Supplement Material is https://www2.yukawa.kyoto-u.ac.jp/~kenta.kiuchi/FUGAKU2022_Supplement_Material.pdf
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 Identifikatoren: arXiv: 2211.07637
DOI: PhysRevLett.131.011401
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Titel: Physical Review Letters
Genre der Quelle: Zeitschrift
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Seiten: - Band / Heft: 131 (1) Artikelnummer: 011401 Start- / Endseite: - Identifikator: -