4.5 Article

Numerical simulation of the hydrodynamical combustion to strange quark matter

期刊

PHYSICAL REVIEW C
卷 82, 期 6, 页码 -

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AMER PHYSICAL SOC
DOI: 10.1103/PhysRevC.82.062801

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  1. Natural Science and Engineering Research Council of Canada (NSERC)
  2. Alberta Innovates (iCore)

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We present results from a numerical solution to the burning of neutron matter inside a cold neutron star into stable u,d,s quark matter. Our method solves hydrodynamical flow equations in one dimension with neutrino emission from weak equilibrating reactions, and strange quark diffusion across the burning front. We also include entropy change from heat released in forming the stable quark phase. Our numerical results suggest burning front laminar speeds of 0.002-0.04 times the speed of light, much faster than previous estimates derived using only a reactive-diffusive description. Analytic solutions to hydrodynamical jump conditions with a temperature-dependent equation of state agree very well with our numerical findings for fluid velocities. The most important effect of neutrino cooling is that the conversion front stalls at lower density (below approximate to 2 times saturation density). In a two-dimensional setting, such rapid speeds and neutrino cooling may allow for a flame wrinkle instability to develop, possibly leading to detonation.

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