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Matter Mixing in Core-collapse Supernova Ejecta: Large Density Perturbations in the Progenitor Star?

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arxiv 1507.07061 v1 pith:I7OPAPDX submitted 2015-07-25 astro-ph.HE astro-ph.SR

Matter Mixing in Core-collapse Supernova Ejecta: Large Density Perturbations in the Progenitor Star?

classification astro-ph.HE astro-ph.SR
keywords mattermixingprogenitorccsnclumpsdensityhighperturbation
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Matter mixing is one important topic in the study of core-collapse supernova (CCSN) explosions. In this paper, we perform two-dimensional hydrodynamic simulations to reproduce the high velocity $^{56}$Ni clumps observed in SN 1987A. This is the first time that large density perturbation is proposed in the CCSN progenitor to generate Rayleigh-Taylor (RT) instability and make the effective matter mixing. In the case of a spherical explosion, RT instability is efficient at both C+O/He and He/H interfaces of the SN progenitor. Radial coherent structures shown in perturbation patterns are important for obtaining high velocity $^{56}$Ni clumps. We can also obtain matter mixing features and high velocity $^{56}$Ni clumps in some cases of aspherical explosion. We find that one of the most favorable models in our work has a combination of bipolar and equatorially asymmetric explosions in which at least 25\% of density perturbation is introduced at different composition interfaces of the CCSN progenitor. These simulation results are comparable to the observational findings of SN 1987A.

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