Gravitational wave and particle emission from a cosmic string loop: local case
Abstract
Using lattice field simulations of the Abelian-Higgs model, we characterize the simultaneous emission of (scalar and gauge) particles and gravitational waves (GWs) by local string loops. We use {\it network} loops created in a phase transition, and {\it artificial} loops formed by either crossing straight-boosted or curved-static infinite strings. Loops decay via both particle and GW emission, on time scales , where is the loop length. For particle production, we find for artificial loops and for network loops, whilst for GW emission, we find for all loops. We find that below a critical length, artificial loops decay primarily through particle production, whilst for larger loops GW emission dominates. However, for network loops, which represent more realistic configurations, particle emission always dominates, as supported by our data with length-to-core ratios up to . Our results indicate that the GW background from a local string network should be greatly suppressed compared to estimations that ignore particle emission.
Keywords
Cite
@article{arxiv.2408.02364,
title = {Gravitational wave and particle emission from a cosmic string loop: local case},
author = {Jorge Baeza-Ballesteros and Edmund J. Copeland and Daniel G. Figueroa and Joanes Lizarraga},
journal= {arXiv preprint arXiv:2408.02364},
year = {2025}
}
Comments
13 pages including one appendix, 5 figures, 2 tables. v2: Matches published version