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Results from 3D electroweak phase transition simulations

We study the phase transition in SU(2)-Higgs model on the lattice using the 3D dimensionally reduced formalism. The 3D formalism enables us to obtain highly accurate Monte Carlo results, which we extrapolate both to the infinite volume and to the continuum limit. Our formalism also provides for a we...

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Detalles Bibliográficos
Autores principales: Farakos, K., Kajantie, K., Laine, M., Rummukainen, K., Shaposhnikov, Mikhail E.
Lenguaje:eng
Publicado: 1995
Materias:
Acceso en línea:https://dx.doi.org/10.1016/0920-5632(96)00155-7
http://cds.cern.ch/record/288563
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author Farakos, K.
Kajantie, K.
Laine, M.
Rummukainen, K.
Shaposhnikov, Mikhail E.
author_facet Farakos, K.
Kajantie, K.
Laine, M.
Rummukainen, K.
Shaposhnikov, Mikhail E.
author_sort Farakos, K.
collection CERN
description We study the phase transition in SU(2)-Higgs model on the lattice using the 3D dimensionally reduced formalism. The 3D formalism enables us to obtain highly accurate Monte Carlo results, which we extrapolate both to the infinite volume and to the continuum limit. Our formalism also provides for a well-determined and unique way to relate the results to the perturbation theory. We measure the critical temperature, latent heat and interface tension for Higgs masses up to 70 GeV.
id cern-288563
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1995
record_format invenio
spelling cern-2885632023-03-14T16:35:21Zdoi:10.1016/0920-5632(96)00155-7http://cds.cern.ch/record/288563engFarakos, K.Kajantie, K.Laine, M.Rummukainen, K.Shaposhnikov, Mikhail E.Results from 3D electroweak phase transition simulationsParticle Physics - LatticeWe study the phase transition in SU(2)-Higgs model on the lattice using the 3D dimensionally reduced formalism. The 3D formalism enables us to obtain highly accurate Monte Carlo results, which we extrapolate both to the infinite volume and to the continuum limit. Our formalism also provides for a well-determined and unique way to relate the results to the perturbation theory. We measure the critical temperature, latent heat and interface tension for Higgs masses up to 70 GeV.We study the phase transition in SU(2)-Higgs model on the lattice using the 3D dimensionally reduced formalism. The 3D formalism enables us to obtain highly accurate Monte Carlo results, which we extrapolate both to the infinite volume and to the continuum limit. Our formalism also provides for a well-determined and unique way to relate the results to the perturbation theory. We measure the critical temperature, latent heat and interface tension for Higgs masses up to 70 GeV.hep-lat/9509086IUHET-316IUHET-316oai:cds.cern.ch:2885631995-09-26
spellingShingle Particle Physics - Lattice
Farakos, K.
Kajantie, K.
Laine, M.
Rummukainen, K.
Shaposhnikov, Mikhail E.
Results from 3D electroweak phase transition simulations
title Results from 3D electroweak phase transition simulations
title_full Results from 3D electroweak phase transition simulations
title_fullStr Results from 3D electroweak phase transition simulations
title_full_unstemmed Results from 3D electroweak phase transition simulations
title_short Results from 3D electroweak phase transition simulations
title_sort results from 3d electroweak phase transition simulations
topic Particle Physics - Lattice
url https://dx.doi.org/10.1016/0920-5632(96)00155-7
http://cds.cern.ch/record/288563
work_keys_str_mv AT farakosk resultsfrom3delectroweakphasetransitionsimulations
AT kajantiek resultsfrom3delectroweakphasetransitionsimulations
AT lainem resultsfrom3delectroweakphasetransitionsimulations
AT rummukainenk resultsfrom3delectroweakphasetransitionsimulations
AT shaposhnikovmikhaile resultsfrom3delectroweakphasetransitionsimulations