A Parameter-Space Study of Carbon-Oxygen White Dwarf Mergers
arXiv:1210.3616 · doi:10.1088/0004-637X/767/2/164
Abstract
The merger of two carbon-oxygen white dwarfs can lead either to a spectacular transient, stable nuclear burning or a massive, rapidly rotating white dwarf. Simulations of mergers have shown that the outcome strongly depends on whether the white dwarfs are similar or dissimilar in mass. In the similar-mass case, both white dwarfs merge fully and the remnant is hot throughout, while in the dissimilar case, the more massive, denser white dwarf remains cold and essentially intact, with the disrupted lower mass one wrapped around it in a hot envelope and disk. In order to determine what constitutes "similar in mass" and more generally how the properties of the merger remnant depend on the input masses, we simulated unsynchronized carbon-oxygen white dwarf mergers for a large range of masses using smoothed-particle hydrodynamics. We find that the structure of the merger remnant varies smoothly as a function of the ratio of the central densities of the two white dwarfs. A density ratio of 0.6 approximately separates similar and dissimilar mass mergers. Confirming previous work, we find that the temperatures of most merger remnants are not high enough to immediately ignite carbon fusion. During subsequent viscous evolution, however, the interior will likely be compressed and heated as the disk accretes and the remnant spins down. We find from simple estimates that this evolution can lead to ignition for many remnants. For similar-mass mergers, this would likely occur under sufficiently degenerate conditions that a thermonuclear runaway would ensue.
33 pages, 18 figures, one seven-page table, published in ApJ 8 April 2013
References in corpus (3)
Cited by in corpus (46)
- Observational clues to the progenitors of Type-Ia supernovae
- Improving the convergence properties of the moving-mesh code AREPO
- The structure and fate of white dwarf merger remnants
- The ejected mass distribution of type Ia supernovae: A significant rate of non-Chandrasekhar-mass progenitors
- Type Ia Supernovae from Merging White Dwarfs I. Prompt Detonations
- Tidal Tail Ejection as a Signature of Type~Ia Supernovae from White Dwarf Mergers
- The Post-Merger Magnetized Evolution of White Dwarf Binaries: The Double-Degenerate Channel of Sub-Chandrasekhar Type Ia Supernovae and the Formation of Magnetized White Dwarfs
- A systematic study of carbon-oxygen white dwarf mergers: mass combinations for Type Ia supernovae
- Post-merger evolution of carbon-oxygen + helium white dwarf binaries and the origin of R Coronae Borealis and extreme helium stars
- Type Ia supernovae from violent mergers of carbon-oxygen white dwarfs: polarisation signatures
- Double-Degenerate Carbon-Oxygen and Oxygen-Neon White Dwarf Mergers: A New Mechanism for Faint and Rapid Type Ia Supernovae
- The critical mass ratio of double white dwarf binaries for violent merger-induced Type Ia supernova explosions
- Common Envelope Evolution on a Moving Mesh
- Discovery of the Fastest Early Optical Emission from Overluminous SN Ia 2020hvf: A Thermonuclear Explosion within a Dense Circumstellar Environment
- Population synthesis of helium white dwarf--red giant star mergers and the formation of lithium-rich giants and carbon stars
- Constraining the double-degenerate scenario for Type Ia supernovae from merger ejected matter
- Thermonuclear detonations ensuing white dwarf mergers
- Spiral Disk Instability Can Drive Thermonuclear Explosions in Binary White Dwarf Mergers
- Magnetized Moving Mesh Merger of a Carbon-Oxygen White Dwarf Binary
- White Dwarf Mergers on Adaptive Meshes I. Methodology and Code Verification
- Discovery of a hot ultramassive rapidly rotating DBA White Dwarf
- Reconciling 56Ni Production in Type Ia Supernovae with Double Degenerate Scenarios
- The origins of Calcium-rich supernovae from disruptions of CO white-dwarfs by hybrid He-CO white-dwarfs
- Evolving R Coronae Borealis Stars with MESA
- Smoothed Particle Hydrodynamics simulations of the core-degenerate scenario for Type Ia supernovae
- Light Curves and Spectra from a Thermonuclear Explosion of a White Dwarf Merger
- Exploring the diversity of double detonation explosions for type Ia supernovae: Effects of the post-explosion helium shell composition
- Optical and radio transients after the collapse of super-Chandrasekhar white dwarf merger remnants
- Near-Chandrasekhar-Mass Type Ia Supernovae from the Double-Degenerate Channel
- Type Ia Supernova Remnants: Shaping by Iron Bullets
- The Spin Evolution of Fast-Rotating, Magnetized Super-Chandrasekhar White Dwarfs in the Aftermath of White Dwarf Mergers
- Electromagnetic emission of white dwarf binary mergers
- Large-scale ordered magnetic fields generated in mergers of helium white dwarfs
- The role of dredge-up in double white dwarf mergers
- A Comparison of Grid-Based and SPH Binary Mass-Transfer and Merger Simulations
- The double white dwarf merger progenitors of SDSS J2211+1136 and ZTF J1901+1458
- Rotating white dwarf models with finite-temperature envelope
- White dwarf dynamical interactions and fast optical transients
- Magnetic White Dwarfs: Observations, Theory, and Future Prospects
- On the optical transients from double white-dwarf mergers
- Merging White Dwarfs and Thermonuclear Supernovae
- The white dwarf binary merger model of GRB 170817A
- A Semi-analytic Criterion for the Spontaneous Initiation of Carbon Detonations in White Dwarfs
- SPH Methods in the Modelling of Compact Objects
- Halted-Pendulum Relaxation: Application to White Dwarf Binary Initial Data
- Chirping compact stars: gravitational radiation and detection degeneracy with binary systems A conceptual pathfinder for space-based gravitational-wave observatories