On the Thermonuclear Runaway in Type Ia Supernovae: How to run away?
arXiv:astro-ph/0104226 · doi:10.1086/338981
Abstract
Type Ia Supernovae are thought to be thermonuclear explosions of massive white dwarfs (WD). We present the first study of multi-dimensional effects during the final hours prior to the thermonuclear runaway which leads to the explosion. The calculations utilize an implicit, 2-D hydro code.Mixing and the ignition process are studied in detail. We find that the initial chemical structure of the WD is changed but the material is not fully homogenized. The exploding WD sustains a central region with a low C/O ratio. This implies that the explosive nuclear burning will begin in a partially C-depleted environment. The thermonuclear runaway happens in a well defined region close to the center. It is induced by compressional heat when matter is brought inwards by convective flows. We find no evidence for multiple spot or strong off-center ignition. Convective velocities are of the order of 100 km/sec which is well above the effective burning speeds in SNe Ia previously expected right after the runaway. For about 0.5 to 1 sec, the speed of the burning front will neither be determined by the laminar speed nor the Rayleigh-Taylor instabilities but by convective flows produced prior to the runaway. The consequences are discussed for our under- standing of the detailed physics of the flame propagation, the deflagration detonation transition, and the nucleosynthesis in the central layers. Our results strongly suggest the pre-conditioning of the progenitor as a key-factor for our understanding of the diversity in SNeIa.
16 pages + 10 figures, ApJ accepted. For high resolution figures send E-mail to [email protected]
References in corpus (3)
Cited by in corpus (71)
- Three-dimensional delayed-detonation models with nucleosynthesis for Type Ia supernovae
- Thermonuclear Supernovae: Simulations of the Deflagration Stage and Their Implications
- Type Ia Supernova Explosion: Gravitationally Confined Detonation
- Spectropolarimetry of SN 2001el in NGC 1448: Asphericity of a Normal Type Ia Supernova
- Three-dimensional simulations of type Ia supernovae
- 3D deflagration simulations leaving bound remnants: a model for 2002cx-like Type Ia supernovae
- Time-dependent 3D spectrum synthesis for type Ia supernovae
- Carbon Ignition in Type Ia Supernovae: An Analytic Model
- Low Mach Number Modeling of Type Ia Supernovae
- Presupernova evolution of accreting white dwarfs with rotation
- Full-star Type Ia supernova explosion models
- Off-center ignition in type Ia supernova: I. Initial evolution and implications for delayed detonation
- The early detection and follow-up of the highly obscured Type II supernova 2016ija/DLT16am
- Three-dimensional modeling of Type Ia supernovae - The power of late time spectra
- Carbon Ignition in Type Ia Supernovae: II. A Three-Dimensional Numerical Model
- MAESTRO: An Adaptive Low Mach Number Hydrodynamics Algorithm for Stellar Flows
- Flame Evolution During Type Ia Supernovae and the Deflagration Phase in the Gravitationally Confined Detonation Scenario
- On the Sensitivity of Deflagrations in Chandrasekhar Mass White Dwarf to Initial Conditions
- Type Ia Supernova models arising from different distributions of igniting points
- Signature of Electron Capture in Iron-Rich Ejecta of SN 2003du
- The first binary star evolution model producing a Chandrasekhar mass white dwarf
- The End of Amnesia: A New Method for Measuring the Metallicity of Type Ia Supernova Progenitors Using Manganese Lines in Supernova Remnants
- High-Resolution Simulations of Convection Preceding Ignition in Type Ia Supernovae Using Adaptive Mesh Refinement
- Secondary Parameters of Type Ia Supernova Light Curves
- Detonating Failed Deflagration Model of Thermonuclear Supernovae I. Explosion Dynamics
- The Chemical Distribution in a Subluminous Type Ia Supernova: HST Images of the SN 1885 Remnant
- The C-flash and the ignition conditions of type Ia supernovae
- Low Mach Number Modeling of Type Ia Supernovae. IV. White Dwarf Convection
- Detonating Failed Deflagration Model of Thermonuclear Supernovae II. Comparison to Observations
- Near Infrared Spectra of Type Ia Supernovae
- The Internal Shear of Type Ia Supernova Progenitors During Accretion and Simmering
- Low Mach Number Modeling of Type Ia Supernovae. II. Energy Evolution
- The Deflagration Stage of Chandrasekhar Mass Models For Type Ia Supernovae: I. Early Evolution
- Type Ia supernova diversity: white dwarf central density as a secondary parameter in three-dimensional delayed detonation models
- Thermonuclear Supernovae: Probing Magnetic Fields by Late-Time IR Line Profiles
- On the Ca-strong 1991bg-like type Ia supernova 2016hnk: evidence for a Chandrasekhar-mass explosion
- Convection during the Late Stages of Simmering in Type Ia Supernovae
- Propagation of the First Flames in Type Ia Supernovae
- The Young and Nearby Normal Type Ia Supernova 2018gv: UV-Optical Observations and the Earliest Spectropolarimetry
- Light curves for off-centre ignition models of type Ia supernovae
- The white dwarf's carbon fraction as a secondary parameter of Type Ia supernovae
- On the type Ia supernovae 2007on and 2011iv: Evidence for Chandrasekhar-mass explosions at the faint end of the luminosity-width relationship
- Carbon Deflagration in Type Ia Supernova: I. Centrally Ignited Models
- Constraining the Progenitor System of the Type Ia Supernova 2021aefx
- Models for Type Ia supernovae and related astrophysical transients
- Thermonuclear explosions of rapidly rotating white dwarfs - I. Deflagrations
- Near-infrared spectral evolution of the Type Ia supernova 2014J in the nebular phase: implications for the progenitor system
- On the gamma-ray emission of Type Ia Supernovae
- The Convective Urca Process with Implicit Two-Dimensional Hydrodynamics
- The Cellular Burning Regime in Type Ia Supernova Explosions - II. Flame Propagation into Vortical Fuel
- Initiation of the detonation in the gravitationally confined detonation model of Type Ia supernovae
- Magneto-Hydrodynamical Effects on Nuclear Deflagration Fronts in Type Ia Supernovae
- Local Ignition in Carbon/Oxygen White Dwarfs -- I: One-zone Ignition and Spherical Shock Ignition of Detonations
- Probing thermonuclear supernova explosions with neutrinos
- JWST Low-Resolution MIRI Spectral Observations of SN~2021aefx: High-density Burning in a Type Ia Supernova
- The ignition of thermonuclear flames in Type Ia supernovae
- Physics of Thermonuclear Explosions: Magnetic Field Effects on Deflagration Fronts and Observable Consequences
- A Further Measurement of the beta-Delayed alpha-Particle Emission of 16N
- Type Ia supernova explosion models are inherently multidimensional
- Multi-dimensional numerical simulations of type Ia supernova explosions
- SN 2021fxy: Mid-Ultraviolet Flux Suppression is a Common Feature of Type Ia Supernovae
- Insights into thermonuclear supernovae from the incomplete silicon burning process
- Type Ia Supernova Progenitor Properties and Their Host Galaxies
- Detonability of white dwarf plasma: turbulence models at low densities
- Uncertainties and robustness of the ignition process in type Ia supernovae
- Galactic Positrons from Thermonuclear Supernovae
- Explosion models for thermonuclear supernovae resulting from different ignition conditions
- New Approaches for Modeling Type Ia Supernovae
- Merging White Dwarf Binaries Produce Type Ia Supernovae in Elliptical Galaxies
- Secondary Fe-peak nuclei in the Tycho Supernova Remnant: A Promising Tracer of Type Ia Progenitor Metallicity
- SN 2021pfs: A Type Ia Supernova Likely Affected by Progenitor Metallicity, as Revealed by Comparison with Its Twin Counterpart