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A Neutrino-Driven Core Collapse Supernova Explosion of a 15 M Star

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arxiv 1507.05680 v1 pith:RBM62WJC submitted 2015-07-20 astro-ph.SR astro-ph.HE

classification astro-ph.SRastro-ph.HE
keywords modelexplosionbouncecoreneutrinoshocksimulationthree-dimensional
verification ladder T0 review T1 audit T2 compute T3 formal
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We present results from an ab initio three-dimensional, multi-physics core collapse supernova simulation for the case of a 15 M progenitor. Our simulation includes multi-frequency neutrino transport with state-of-the-art neutrino interactions in the "ray-by-ray" approximation, and approximate general relativity. Our model exhibits a neutrino-driven explosion. The shock radius begins an outward trajectory at approximately 275 ms after bounce, giving the first indication of a developing explosion in the model. The onset of this shock expansion is delayed relative to our two-dimensional counterpart model, which begins at approximately 200 ms after core bounce. At a time of 441 ms after bounce, the angle-averaged shock radius in our three-dimensional model has reached 751 km. Further quantitative analysis of the outcomes in this model must await further development of the post-bounce dynamics and a simulation that will extend well beyond 1 s after stellar core bounce, based on the results for the same progenitor in the context of our two-dimensional, counterpart model. This more complete analysis will determine whether or not the explosion is robust and whether or not observables such as the explosion energy, 56Ni mass, etc. are in agreement with observations. Nonetheless, the onset of explosion in our ab initio three-dimensional multi-physics model with multi-frequency neutrino transport and general relativity is encouraging.

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Cited by 2 Pith papers

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  1. $f$-mode oscillations in hot Neutron Stars: Effect of hyperons and neutrino trapping

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    For hot hyperonic neutron stars with trapped neutrinos, the nuclear saturation density becomes the dominant parameter controlling radii, tidal deformability, and f-mode frequencies, and the standard cold universal rel...

  2. Constraints on maximum neutron star mass from proto-neutron star evolution

    nucl-th 2025-05 conditional novelty 5.0 of 10

    Hyperonic neutron stars are inferred to cap at roughly 2.15 to 2.2 solar masses, while stars above 2.2 solar masses should have purely nucleonic cores.

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