A Precise Fitting Formula for Gravitational Wave Spectra from Phase Transitions
Huai-ke Guo, Fazlollah Hajkarim, Kuver Sinha, Graham White, Yang Xiao

TL;DR
This paper introduces a more accurate double broken power law fit function for gravitational wave spectra from phase transitions, improving over previous models by capturing key physical features with less computational effort.
Contribution
The authors develop a new fit function based on the sound shell model that more accurately reproduces GW spectra from phase transitions, accounting for two characteristic length scales.
Findings
The new fit function outperforms previous single broken power law fits in accuracy.
Physical interpretation of fit parameters relates to phase transition properties.
The fit can be used to generate GW spectra from key thermodynamic parameters.
Abstract
Obtaining a precise form for the predicted gravitational wave (GW) spectrum from a phase transition is a topic of great relevance for beyond Standard Model (BSM) physicists. Currently, the most sophisticated semi-analytic framework for estimating the dominant contribution to the spectrum is the sound shell model; however, full calculations within this framework can be computationally expensive, especially for large-scale scans. The community therefore generally manages with fit functions to the GW spectrum, the most widely used of which is a single broken power law. We provide a more precise fit function based on the sound shell model: our fit function features a double broken power law with two frequency breaks corresponding to the two characteristic length scales of the problem -- inter-bubble spacing and thickness of sound shells, the second of which is neglected in the single broken…
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Taxonomy
TopicsGeophysics and Gravity Measurements
