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dc.contributor.authorBALLERINI, G.
dc.contributor.authorBERRA, A.
dc.contributor.authorBOANTA, R.
dc.contributor.authorBONESINI, M.
dc.contributor.authorBRIZZOLARI, C.
dc.contributor.authorBRUNETTI, G.
dc.contributor.authorCALVIANI, M.
dc.contributor.authorCARTURAN, S.
dc.contributor.authorCATANESI, M.G.
dc.contributor.authorCECCHINI, S.
dc.contributor.authorCINDOLO, F.
dc.contributor.authorCOFFANI, A.
dc.contributor.authorCOLLAZUOL, G.
dc.contributor.authorCONTI, E.
dc.contributor.authorDAL CORSO, F.
dc.contributor.authorDE ROSA, G.
dc.contributor.authorGOLA, A.
dc.contributor.authorINTONTI, R.A.
hal.structure.identifierInstitut Pluridisciplinaire Hubert Curien [IPHC]
dc.contributor.authorJOLLET, C.
dc.contributor.authorKUDENKO, Y.
dc.contributor.authorLAVEDER, M.
dc.contributor.authorLONGHIN, A.
dc.contributor.authorLOVERRE, P.F.
dc.contributor.authorLUDOVICI, L.
dc.contributor.authorMAGALETTI, L.
dc.contributor.authorMANDRIOLI, G.
dc.contributor.authorMARGOTTI, A.
dc.contributor.authorMASCAGNA, V.
dc.contributor.authorMAURI, N.
hal.structure.identifierCentre d'Etudes Nucléaires de Bordeaux Gradignan [CENBG]
dc.contributor.authorMEREGAGLIA, A.
dc.contributor.authorMEZZETTO, M.
dc.contributor.authorNESSI, M.
dc.contributor.authorPAOLONI, A.
dc.contributor.authorPARI, M.
dc.contributor.authorPATERNOSTER, G.
dc.contributor.authorPATRIZII, L.
dc.contributor.authorPIEMONTE, C.
dc.contributor.authorPOZZATO, M.
dc.contributor.authorPREST, M.
dc.contributor.authorPUPILLI, F.
dc.contributor.authorRADICIONI, E.
dc.contributor.authorRICCIO, C.
dc.contributor.authorRUGGERI, A.C.
dc.contributor.authorSOLDANI, M.
dc.contributor.authorSIRRI, G.
dc.contributor.authorTENTI, M.
dc.contributor.authorTERRANOVA, F.
dc.contributor.authorVALLAZZA, E.
dc.contributor.authorVESCO, M.
dc.contributor.authorVOTANO, L.
dc.contributor.authorWILDNER, E.
dc.date.issued2018
dc.date.conference2017-10-15
dc.description.abstractEnThe next generation of neutrino experiments requires measurements of absolute neutrino cross sections at the GeV scale with high precision (∼1%) presently limited by the uncertainties on neutrino flux. Monitoring the lepton production in the decay tunnel of neutrino beams is the most straightforward way to measure the neutrino flux at source. The ENUBET Collaboration develops novel technologies to monitor positrons from K + → νee +π0 decays on an event by event basis. This technique can achieve a precision in the νe flux below 1% and enable a new generation of cross section and short baseline experiments. In this paper, we present the achievements of the first year of the Project on beamline simulation, rate and dose assessment, detector prototyping and evaluation of the physics reach.
dc.language.isoen
dc.source.titleJ.Phys.Conf.Ser.
dc.subject.enactivity report
dc.subject.enneutrino: flux
dc.subject.enneutrino: beam
dc.subject.enlepton: production
dc.subject.enpositron
dc.subject.enmonitoring
dc.subject.enbeam transport
dc.subject.enmeasurement methods
dc.subject.endetector: design
dc.title.enStatus of the ENUBET project
dc.typeCommunication dans un congrès
dc.identifier.doi10.1088/1742-6596/1056/1/012047
dc.subject.halPhysique [physics]/Physique [physics]/Instrumentations et Détecteurs [physics.ins-det]
dc.subject.halPhysique [physics]/Physique des Hautes Energies - Expérience [hep-ex]
bordeaux.page012047
bordeaux.volume1056
bordeaux.issue1
bordeaux.countryIT
bordeaux.title.proceedingJ.Phys.Conf.Ser.
bordeaux.conference.cityCatania
bordeaux.peerReviewednon
hal.identifierhal-01862003
hal.version1
hal.invitednon
hal.proceedingsoui
hal.conference.end2017-10-21
hal.popularnon
hal.audienceInternationale
hal.origin.linkhttps://hal.archives-ouvertes.fr//hal-01862003v1
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