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Hydrodynamical Simulations of Proton Ingestion Flashes in Type I X-Ray Bursts

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Abstract

We perform the first multidimensional fluid simulations of thermonuclear helium ignition underneath a hydrogenrich shell. This situation is relevant to Type I X-ray bursts on neutron stars that accrete from a hydrogen-rich companion. Using the low-Mach number fluid code MAESTROeX, we investigate the growth of the convection zone due to nuclear burning, and the evolution of the chemical abundances in the atmosphere of the star. We also examine the convective boundary mixing processes that cause the evolution to differ significantly from previous one-dimensional simulations that rely on mixing-length theory. We find that the convection zone grows outward as penetrating fluid elements cool the overlying radiative layer, rather than directly from the increasing entropy of the convection zone itself. Simultaneously, these flows efficiently mix composition, carrying carbon out of and protons into the convection zone even before contact with the hydrogen shell. We discuss the implications of these effects for future modeling of these events and observations.

Original languageEnglish
Article number250
JournalAstrophysical Journal
Volume975
Issue number2
DOIs
StatePublished - Nov 1 2024

Keywords

  • Astrophysical fluid dynamics (101)
  • Neutron stars (1108)
  • Stellar convection envelopes (299)

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