Extending and Calibrating the Velocity dependent One-Scale model for Cosmic Strings with One Thousand Field Theory Simulations
J. R. C. C. C. Correia, C. J. A. P. Martins

TL;DR
This paper significantly improves the Velocity-dependent One-Scale (VOS) model for cosmic strings by leveraging extensive field theory simulations, enabling more accurate predictions of their evolution and cosmological impacts.
Contribution
It extends and calibrates the VOS model for cosmic strings using over 10^32 field theory simulations, incorporating detailed effects of expansion rate and energy loss mechanisms.
Findings
Calibrated the VOS model with 1032 simulations across 43 expansion rates.
Identified distinct energy loss mechanisms for cosmic strings versus domain walls.
Enhanced the predictive accuracy of cosmic string network evolution models.
Abstract
Understanding the evolution and cosmological consequences of topological defect networks requires a combination of analytic modeling and numerical simulations. The canonical analytic model for defect network evolution is the Velocity-dependent One-Scale (VOS) model. For the case of cosmic strings, this has so far been calibrated using small numbers of Goto-Nambu and field theory simulations, in the radiation and matter eras, as well as in Minkowski spacetime. But the model is only as good as the available simulations, and it should be extended as further simulations become available. In previous work we presented a General Purpose Graphics Processing Unit implementation of the evolution of cosmological domain wall networks, and used it to obtain an improved VOS model for domain walls. Here we continue this effort, exploiting a more recent analogous code for local Abelian-Higgs string…
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