Carbon production on accreting neutron stars in a new regime of stable nuclear burning
arXiv:1508.06630 · doi:10.1093/mnrasl/slv167
Abstract
Accreting neutron stars exhibit Type I X-ray bursts from both frequent hydrogen/helium flashes as well as rare carbon flashes. The latter (superbursts) ignite in the ashes of the former. Hydrogen/helium bursts, however, are thought to produce insufficient carbon to power superbursts. Stable burning could create the required carbon, but this was predicted to only occur at much larger accretion rates than where superbursts are observed. We present models of a new steady-state regime of stable hydrogen and helium burning that produces pure carbon ashes. Hot CNO burning of hydrogen heats the neutron star envelope and causes helium to burn before the conditions of a helium flash are reached. This takes place when the mass accretion rate is around 10% of the Eddington limit: close to the rate where most superbursts occur. We find that increased heating at the base of the envelope sustains steady-state burning by steepening the temperature profile, which increases the amount of helium that burns before a runaway can ensue.
5 pages, 3 figures, accepted for publication in MNRAS
References in corpus (10)
- Strong neutrino cooling by cycles of electron capture and decay in neutron star crusts
- Models of Type I X-ray Bursts from GS 1826-24: A Probe of rp-Process Hydrogen Burning
- Spread of Matter over a Neutron-Star Surface During Disk Accretion: Deceleration of Rapid Rotation
- Sedimentation and Type I X-ray Bursts at Low Accretion Rates
- First superburst from a classical low-mass X-ray binary transient
- Superburst Models for Neutron Stars with Hydrogen and Helium-Rich Atmospheres
- Turbulent Mixing in the Surface Layers of Accreting Neutron Stars
- Reaction Rate and Composition Dependence of the Stability of Thermonuclear Burning on Accreting Neutron Stars
- Carbon Synthesis in Steady-State Hydrogen and Helium Burning On Accreting Neutron Stars
- The Thermal Stability of Helium Burning on Accreting Neutron Stars
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- Nuclear Physics of the Outer Layers of Accreting Neutron Stars
- Nuclear Reactions in the Crusts of Accreting Neutron Stars
- Thermonuclear burst observations for model comparisons: a reference sample
- Constraining the Properties of the Thermonuclear Burst Oscillation Source XTE J1814-338 Through Pulse Profile Modelling
- Neutrino Losses in Type I Thermonuclear X-ray Bursts: An Improved Nuclear Energy Generation Approximation
- Constraints on Bygone Nucleosynthesis of Accreting Neutron Stars
- Neutron star cooling and the rp process in thermonuclear X-ray bursts
- The efficiency of nuclear burning during thermonuclear (Type I) bursts as a function of accretion rate
- Phase-resolved analyses of mHz quasi-periodic oscillations in 4U 1636-53 using Hilbert-Huang transform
- The Impacts of Neutron-Star Structure and Base Heating on Type I X-Ray Bursts and Code Comparison
- The energetic thermonuclear bursts in SAX J1712.6-3739
- Constraining Accreted Neutron Star Crust Shallow Heating with the Inferred Depth of Carbon Ignition in X-ray Superbursts
- Impact of Accretion Assumptions on Pulse Profile Modelling of Superburst Oscillations in 4U 1636-536
- A solution to the tension of burning on neutron stars and nuclear physics