Jet Induced Supernovae-Hydrodynamics and Observational Consequences
arXiv:astro-ph/0011023 · doi:10.1063/1.1368287
Abstract
Core collapse supernovae (SN) are the final stages of stellar evolution in massive stars during which the central region collapses, forms a neutron star (NS), and the outer layers are ejected. Recent explosion scenarios assumed that the ejection is due to energy deposition by neutrinos into the envelope but detailed models do not produce powerful explosions. There is mounting evidence for an asphericity in the SN which is difficult to explain within this picture. This evidence includes the observed high polarization, pulsar kicks, high velocity iron-group and intermediate-mass elements material observed in remnants, etc. The discovery of highly magnetars revived the idea that the basic mechanism for the ejection of the envelope is related to a highly focused MHD-jet formed at the NS. Our 3-D hydro simulations of the jet propagation through the star confirmed that the mechanism can explain the asphericities. In this paper, detailed 3-D models for jet induced explosions of "classical" core collapse supernovae are presented. We demonstrate the influence of the jet properties and of the underlaying progenitor structure on the final density and chemical structure. Finally, we discuss the observational consequences, predictions and tests of this scenario.
Latex, Figures and captions are separated (fig1,2,3-5,6.ps) Hi-res. jpeg files can be obtained by request to [email protected]. in: 1st KIAS Astrophysics, Workshop, Seoul/Corea, IAP-Publishing, ed. I. Yi, submitted Aug. 2000, in press
Cited by in corpus (7)
- The Magnetorotational Instability in Core Collapse Supernova Explosions
- Spectropolarimetry of Supernovae
- Asymmetric Supernovae from Magneto-Centrifugal Jets
- Spectropolarimetry of the Type Ic SN 2002ap in M74: More Evidence for Asymmetric Core Collapse
- Photospheric-Phase Spectropolarimetry and Nebular-Phase Spectroscopy of the Peculiar Type Ic Supernova 2002ap
- The Shape of Cas A
- The Non-Monotonic Dependence of Supernova and Remnant Formation on Progenitor Rotation