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author Alekou, A.
Baussan, E.
Kraljevic, N. Blaskovic
Blennow, M.
Bogomilov, M.
Bouquerel, E.
Burgman, A.
Carlile, C.J.
Cederkall, J.
Christiansen, P.
Collins, M.
Morales, E. Cristaldo
Cupial, P.
Alessi, L.D.
Danared, H.
de Andre, J.P.A.M.
Delahaye, J.P.
Dracos, M.
Efthymiopoulos, I.
Ekelof, T.
Eshraqi, M.
Fanourakis, G.
Fernandez-Martinez, E.
Folsom, B.
Gazis, N.
Geralis, Th.
Ghosh, M.
Gokbulut, G.
Halic, L.
Topaksu, A. Kayis
Kildetoft, B.
Klicek, B.
Koziol, M.
Krhac, K.
Lacny, L.
Lindroos, M.
Mezzetto, M.
Oglakci, M.
Ohlsson, T.
Olvegard, M.
Ota, T.
Park, J.
Patrzalek, D.
Petkov, G.
Poussot, P.
Johansson, R.
Rosauro-Alcaraz, S.
Szybinski, B.
Snamina, J.
Stavropoulos, G.
Stipcevic, M.
Terranova, F.
Thomas, J.
Tolba, T.
Trachanas, E.
Tsenov, R.
Vankova-Kirilova, G.
Vassilopoulos, N.
Wildner, E.
Wurtz, J.
Zormpa, O.
Zou, Y.
author_facet Alekou, A.
Baussan, E.
Kraljevic, N. Blaskovic
Blennow, M.
Bogomilov, M.
Bouquerel, E.
Burgman, A.
Carlile, C.J.
Cederkall, J.
Christiansen, P.
Collins, M.
Morales, E. Cristaldo
Cupial, P.
Alessi, L.D.
Danared, H.
de Andre, J.P.A.M.
Delahaye, J.P.
Dracos, M.
Efthymiopoulos, I.
Ekelof, T.
Eshraqi, M.
Fanourakis, G.
Fernandez-Martinez, E.
Folsom, B.
Gazis, N.
Geralis, Th.
Ghosh, M.
Gokbulut, G.
Halic, L.
Topaksu, A. Kayis
Kildetoft, B.
Klicek, B.
Koziol, M.
Krhac, K.
Lacny, L.
Lindroos, M.
Mezzetto, M.
Oglakci, M.
Ohlsson, T.
Olvegard, M.
Ota, T.
Park, J.
Patrzalek, D.
Petkov, G.
Poussot, P.
Johansson, R.
Rosauro-Alcaraz, S.
Szybinski, B.
Snamina, J.
Stavropoulos, G.
Stipcevic, M.
Terranova, F.
Thomas, J.
Tolba, T.
Trachanas, E.
Tsenov, R.
Vankova-Kirilova, G.
Vassilopoulos, N.
Wildner, E.
Wurtz, J.
Zormpa, O.
Zou, Y.
author_sort Alekou, A.
collection CERN
description In this Snowmass 2021 white paper, we summarise the Conceptual Design of the European Spallation Source neutrino Super Beam (ESSvSB) experiment and its synergies with the possible future muon based facilities, e.g. a Low Energy nuSTORM and the Muon Collider. The ESSvSB will benefit from the high power, 5 MW, of the European Spallation Source (ESS) LINAC in Lund-Sweden to produce the world most intense neutrino beam, enabling measurements to be made at the second oscillation maximum. Assuming a ten-year exposure, physics simulations show that the CP-invariance violation can be established with a significance of 5 sigma over more than 70% of all values of delta CP and with an error in the measurement of the delta CP angle of less than 8 degree for all values of delta CP. However, several technological and physics challenges must be further studied before achieving a final Technical Design. Measuring at the 2nd oscillation maximum necessitates a very intense neutrino beam with the appropriate energy. For this, the ESS proton beam LINAC, which is designed to produce the world's most intense neutron beam, will need to be upgraded to 10 MW power, 2.5 GeV energy and 28 Hz beam pulse repetition rate. An accumulator ring will be required for the compression of the ESS LINAC beam pulse from 2.86 ms to 1.3 mus. A high power target station facility will be needed to produce a well-focused intense (super) mu-neutrino beam. The physics performance of that neutrino Super Beam in conjunction with a megaton underground Water Cherenkov neutrino far detector installed at a distance of either 360 km or 540 km from the ESS, the baseline, has been evaluated.
id cern-2806338
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2022
record_format invenio
spelling cern-28063382023-08-25T03:09:05Zhttp://cds.cern.ch/record/2806338engAlekou, A.Baussan, E.Kraljevic, N. BlaskovicBlennow, M.Bogomilov, M.Bouquerel, E.Burgman, A.Carlile, C.J.Cederkall, J.Christiansen, P.Collins, M.Morales, E. CristaldoCupial, P.Alessi, L.D.Danared, H.de Andre, J.P.A.M.Delahaye, J.P.Dracos, M.Efthymiopoulos, I.Ekelof, T.Eshraqi, M.Fanourakis, G.Fernandez-Martinez, E.Folsom, B.Gazis, N.Geralis, Th.Ghosh, M.Gokbulut, G.Halic, L.Topaksu, A. KayisKildetoft, B.Klicek, B.Koziol, M.Krhac, K.Lacny, L.Lindroos, M.Mezzetto, M.Oglakci, M.Ohlsson, T.Olvegard, M.Ota, T.Park, J.Patrzalek, D.Petkov, G.Poussot, P.Johansson, R.Rosauro-Alcaraz, S.Szybinski, B.Snamina, J.Stavropoulos, G.Stipcevic, M.Terranova, F.Thomas, J.Tolba, T.Trachanas, E.Tsenov, R.Vankova-Kirilova, G.Vassilopoulos, N.Wildner, E.Wurtz, J.Zormpa, O.Zou, Y.The European Spallation Source neutrino Super Beamhep-exParticle Physics - Experimentphysics.acc-phAccelerators and Storage RingsIn this Snowmass 2021 white paper, we summarise the Conceptual Design of the European Spallation Source neutrino Super Beam (ESSvSB) experiment and its synergies with the possible future muon based facilities, e.g. a Low Energy nuSTORM and the Muon Collider. The ESSvSB will benefit from the high power, 5 MW, of the European Spallation Source (ESS) LINAC in Lund-Sweden to produce the world most intense neutrino beam, enabling measurements to be made at the second oscillation maximum. Assuming a ten-year exposure, physics simulations show that the CP-invariance violation can be established with a significance of 5 sigma over more than 70% of all values of delta CP and with an error in the measurement of the delta CP angle of less than 8 degree for all values of delta CP. However, several technological and physics challenges must be further studied before achieving a final Technical Design. Measuring at the 2nd oscillation maximum necessitates a very intense neutrino beam with the appropriate energy. For this, the ESS proton beam LINAC, which is designed to produce the world's most intense neutron beam, will need to be upgraded to 10 MW power, 2.5 GeV energy and 28 Hz beam pulse repetition rate. An accumulator ring will be required for the compression of the ESS LINAC beam pulse from 2.86 ms to 1.3 mus. A high power target station facility will be needed to produce a well-focused intense (super) mu-neutrino beam. The physics performance of that neutrino Super Beam in conjunction with a megaton underground Water Cherenkov neutrino far detector installed at a distance of either 360 km or 540 km from the ESS, the baseline, has been evaluated.arXiv:2203.08803oai:cds.cern.ch:28063382022-03-15
spellingShingle hep-ex
Particle Physics - Experiment
physics.acc-ph
Accelerators and Storage Rings
Alekou, A.
Baussan, E.
Kraljevic, N. Blaskovic
Blennow, M.
Bogomilov, M.
Bouquerel, E.
Burgman, A.
Carlile, C.J.
Cederkall, J.
Christiansen, P.
Collins, M.
Morales, E. Cristaldo
Cupial, P.
Alessi, L.D.
Danared, H.
de Andre, J.P.A.M.
Delahaye, J.P.
Dracos, M.
Efthymiopoulos, I.
Ekelof, T.
Eshraqi, M.
Fanourakis, G.
Fernandez-Martinez, E.
Folsom, B.
Gazis, N.
Geralis, Th.
Ghosh, M.
Gokbulut, G.
Halic, L.
Topaksu, A. Kayis
Kildetoft, B.
Klicek, B.
Koziol, M.
Krhac, K.
Lacny, L.
Lindroos, M.
Mezzetto, M.
Oglakci, M.
Ohlsson, T.
Olvegard, M.
Ota, T.
Park, J.
Patrzalek, D.
Petkov, G.
Poussot, P.
Johansson, R.
Rosauro-Alcaraz, S.
Szybinski, B.
Snamina, J.
Stavropoulos, G.
Stipcevic, M.
Terranova, F.
Thomas, J.
Tolba, T.
Trachanas, E.
Tsenov, R.
Vankova-Kirilova, G.
Vassilopoulos, N.
Wildner, E.
Wurtz, J.
Zormpa, O.
Zou, Y.
The European Spallation Source neutrino Super Beam
title The European Spallation Source neutrino Super Beam
title_full The European Spallation Source neutrino Super Beam
title_fullStr The European Spallation Source neutrino Super Beam
title_full_unstemmed The European Spallation Source neutrino Super Beam
title_short The European Spallation Source neutrino Super Beam
title_sort european spallation source neutrino super beam
topic hep-ex
Particle Physics - Experiment
physics.acc-ph
Accelerators and Storage Rings
url http://cds.cern.ch/record/2806338
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