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Energy budget of cosmological first-order phase transitions

Journal of Cosmology and Astroparticle Physics · 2010 · Vol. 2010(06) · pp. 028–028
J. R. EspinosaThomas KonstandinJosé Miguel NoGéraldine Servant

Abstract

The study of the hydrodynamics of bubble growth in first-order phase transitions is very relevant for electroweak baryogenesis, as the baryon asymmetry depends sensitively on the bubble wall velocity, and also for predicting the size of the gravity wave signal resulting from bubble collisions, which depends on both the bubble wall velocity and the plasma fluid velocity. We perform such study in different bubble expansion regimes, namely deflagrations, detonations, hybrids (steady states) and runaway solutions (accelerating wall), without relying on a specific particle physics model. We compute the efficiency of the transfer of vacuum energy to the bubble wall and the plasma in all regimes. We clarify the condition determining the runaway regime and stress that in most models of strong first-order phase transitions this will modify expectations for the gravity wave signal. Indeed, in this case, most of the kinetic energy is concentrated in the wall and almost no turbulent fluid motions are expected since the surrounding fluid is kept mostly at rest.

Cosmology and Gravitation TheoriesPulsars and Gravitational Waves ResearchBlack Holes and Theoretical PhysicsPhysicsBubbleBaryogenesisMechanicsPhase transitionAdiabatic processBaryon asymmetryTwo-fluid modelTurbulenceFalse vacuum
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591
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References
Gravitational wave production by collisions: more bubbles
Journal of Cosmology and Astroparticle Physics · 2008 · 549 citations
Cosmic separation of phases
Physical review. D. Particles, fields, gravitation, and cosmology/Physical review. D. Particles and fields · 1984 · 3,310 citations
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