Superburst Models for Neutron Stars with Hydrogen and Helium-Rich Atmospheres
arXiv:1204.1343 · doi:10.1088/0004-637X/752/2/150
Abstract
Superbursts are rare day-long Type I X-ray bursts due to carbon flashes on accreting neutron stars in low-mass X-ray binaries. They heat the neutron star envelope such that the burning of accreted hydrogen and helium becomes stable, and the common shorter X-ray bursts are quenched. Short bursts reappear only after the envelope cools down. We study multi-zone one-dimensional models of the neutron star envelope, in which we follow carbon burning during the superburst, and we include hydrogen and helium burning in the atmosphere above. We investigate both the case of a solar composition and a helium-rich atmosphere. This allows us to study for the first time a wide variety of thermonuclear burning behavior as well as the transitions between the different regimes in a self-consistent manner. For solar composition, burst quenching ends much sooner than previously expected. This is because of the complex interplay between the 3-alpha, hot CNO, and CNO breakout reactions. Stable burning of hydrogen and helium transitions via marginally stable burning (mHz QPOs) to less energetic bursts with short recurrence times. We find a short-lived bursting mode where weaker and stronger bursts alternate. Eventually the bursting behavior changes back to that of the pre-superburst bursts. Because of the scarcity of observations, this transition has not been directly detected after a superburst. Using the MINBAR burst catalog we identify the shortest upper limit on the quenching time for 4U 1636-536, and derive further constraints on the time scale on which bursts return.
14 pages, 15 figures, 2 tables, accepted for publication in ApJ
Cited by in corpus (27)
- Nucleosynthesis in Type I X-ray Bursts
- Discovery of a Neutron Star Oscillation Mode During a Superburst
- Horizons: Nuclear Astrophysics in the 2020s and Beyond
- Reaction Rate and Composition Dependence of the Stability of Thermonuclear Burning on Accreting Neutron Stars
- Characterizing the Evolving X-Ray Spectral Features During a Superburst from 4U 1636-536
- Constraints on Bygone Nucleosynthesis of Accreting Neutron Stars
- Effects of Nuclear Equation of State on Type-I X-ray Bursts: Interpretation of the X-ray Bursts from GS 1826-24
- Carbon Synthesis in Steady-State Hydrogen and Helium Burning On Accreting Neutron Stars
- Indications for a slow rotator in the Rapid Burster from its thermonuclear bursting behaviour
- Maxi observations of long X-ray bursts
- Impacts of the direct URCA and Superfluidity inside a Neutron Star on Type-I X-Ray Bursts and X-Ray Superbursts
- The Thermal Stability of Helium Burning on Accreting Neutron Stars
- Discovery of transition from marginally stable burning to unstable burning after a superburst in Aql X-1
- XMMU J181227.8-181234: a new ultracompact X-ray binary candidate
- Model of heat diffusion in the outer crust of bursting neutron stars
- Three-Dimensional Magnetothermal Simulations of Magnetar Outbursts
- The Impact of Neutron Transfer Reactions on Heating and Cooling of Accreted Neutron Star Crusts
- Discovery of a long thermonuclear X-ray burst from the ultra-compact binary 4U 1850087
- A Circumbinary Disk Scenario For The Negative Orbital-Period Derivative Of The Ultracompact X-ray Binary 4u1820-303
- Impact of Pycnonuclear Fusion Uncertainties on the Cooling of Accreting Neutron Star Crusts
- Selfsimilarity relations for torsional oscillations of neutron stars
- Constraining Accreted Neutron Star Crust Shallow Heating with the Inferred Depth of Carbon Ignition in X-ray Superbursts
- Crust composition and the Shallow Heat Source in KS 1731-260
- Net reaction rate and neutrino emissivity for the Urca process in departure from chemical equilibrium
- A search for the superburst oscillation signal in the regular thermonuclear bursts of 4U 1636-536
- Tracing the outburst decay of soft X-ray transients Aql X-1 and 4U 1608-52 with XSPECT
- Long thermonuclear burst driven thermal-viscous instability of accretion disk: triggering an outburst-like X-ray flare