# Vorticity, kinetic energy, and suppressed gravitational wave production   in strong first order phase transitions

**Authors:** Daniel Cutting, Mark Hindmarsh, David J. Weir

arXiv: 1906.00480 · 2020-07-21

## TL;DR

This study uses 3D simulations to analyze fluid dynamics and gravitational wave production during strong first-order phase transitions in the early Universe, revealing suppressed gravitational wave signals especially in deflagrations.

## Contribution

First 3D simulations of strong first-order phase transitions showing differences in fluid velocity and gravitational wave production between deflagrations and detonations.

## Key findings

- Rotational fluid velocity increases with transition strength in deflagrations.
- Kinetic energy transfer efficiency decreases as transition strength increases.
- Gravitational wave energy density growth is suppressed in strong deflagrations.

## Abstract

We have performed the first 3-dimensional simulations of strong first-order thermal phase transitions in the early Universe. For deflagrations, we find that the rotational component of the fluid velocity increases as the transition strength is increased. For detonations, however, the rotational velocity component remains constant and small. We also find that the efficiency with which kinetic energy is transferred to the fluid falls below theoretical expectations as we increase the transition strength. The probable origin of the kinetic energy deficit is the formation of reheated droplets of the metastable phase during the collision, slowing the bubble walls. The rate of increase in the gravitational wave energy density for deflagrations in strong transitions is suppressed compared to that predicted in earlier work. This is largely accounted for by the reduction in kinetic energy. Current modelling therefore substantially overestimates the gravitational wave signal for strong transitions with deflagrations, in the most extreme case by a factor of $10^{3}$. Detonations are less affected.

## Full text

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## Figures

30 figures with captions in the complete paper: https://tomesphere.com/paper/1906.00480/full.md

## References

59 references — full list in the complete paper: https://tomesphere.com/paper/1906.00480/full.md

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Source: https://tomesphere.com/paper/1906.00480