Relic backgrounds of gravitational waves from cosmic turbulence
- 18 November 2002
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review D
- Vol. 66 (10) , 103505
- https://doi.org/10.1103/physrevd.66.103505
Abstract
Turbulence may have been produced in the early universe by several nonequilibrium processes. Periods of cosmic turbulence may have left a detectable relic under the form of stochastic backgrounds of gravitational waves. In this paper we derive general expressions for the power spectrum of the expected signal. Extending previous works on the subject, we take into account the effects of a continuous energy injection power and of magnetic fields. Both effects lead to relevant deviations from the Kolmogoroff turbulence spectrum. We apply our results to determine the spectrum of gravity waves which may have been produced by neutrino inhomogeneous diffusion and during a first order phase transition. We show that in both cases the expected signal may be in the sensitivity range of the interferometer LISA.Keywords
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This publication has 18 references indexed in Scilit:
- Gravitational radiation from cosmological turbulencePhysical Review D, 2002
- Gravitational waves from electroweak phase transitionsNuclear Physics B, 2002
- Generation of Magnetic Fields and Gravitational Waves at Neutrino DecouplingPhysical Review Letters, 2001
- Supersymmetric phase transitions and gravitational waves at LISAClassical and Quantum Gravity, 2001
- Magnetic fields in the early UniversePublished by Elsevier ,2001
- Gravitational wave experiments and early universe cosmologyPhysics Reports, 2000
- Amplification of isocurvature perturbations induced by active-sterile neutrino oscillationsPhysics Letters B, 2000
- LISA - an ESA cornerstone mission for a gravitational wave observatoryClassical and Quantum Gravity, 1997
- Magnetic fields produced by phase transition bubbles in the electroweak phase transitionPhysical Review D, 1996
- Gravitational radiation from first-order phase transitionsPhysical Review D, 1994