By relaxing the unbiased-loss assumption in the CVOS model, the paper finds new asymptotic scaling solutions for current-carrying cosmic strings, some of which have no unbiased analog.
High resolution calibration of the cosmic strings velocity dependent one-scale model
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abstract
The canonical velocity-dependent one-scale (VOS) model for cosmic string evolution must be calibrated using high resolution numerical simulations, We exploit our state of the art graphics processing unit accelerated implementation of the evolution of local Abelian-Higgs string networks to provide a detailed and statistically robust calibration of the VOS model. We rely on the largest set of high resolution simulations carried out to date, with a wide range of cosmological expansion rates, and explore the impact of key numerical parameters, including the dynamic range (comparing box sizes from $1024^3$ to $4096^3$), the lattice spacing, and the choice of numerical estimators for the string velocity. We explore the sensitivity of the VOS model parameters to these numerical parameters, with a particular emphasis on the observationally crucial loop chopping efficiency, and also identify key differences between the equation of state and conjugate momentum estimators for the string velocities, showing that the latter one is more reliable for fast expansion rates (while in Minkowski space the opposite has been previously shown). Finally, we briefly illustrate how our results impact observational constraints on cosmic strings.
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Scaling solutions for current-carrying cosmic string networks. II. Biased solutions
By relaxing the unbiased-loss assumption in the CVOS model, the paper finds new asymptotic scaling solutions for current-carrying cosmic strings, some of which have no unbiased analog.