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The European Spallation Source neutrino Super Beam Conceptual Design Report

High Energy Physics - Experiment 2022-11-30 v1 High Energy Physics - Phenomenology Accelerator Physics

Abstract

This conceptual design report provides a detailed account of the European Spallation Source neutrino Super Beam (ESSν\nuSB) feasibility study. This facility has been proposed after the measurements reported in 2012 of a relatively large value of the neutrino mixing angle θ13\theta_{13}, which raised the possibility of observing potential CP violation in the leptonic sector with conventional neutrino beams. The measured value of θ13\theta_{13} also privileges the 2nd2^{nd} oscillation maximum for the discovery of CP violation instead of the more typically studied 1st1^{st} maximum. The sensitivity at this 2nd2^{nd} oscillation maximum is about three times higher than at the 1st1^{st} one, which implies a reduced influence of systematic errors. Working at the 2nd2^{nd} oscillation maximum requires a very intense neutrino beam with an appropriate energy. The world's most intense pulsed spallation neutron source, the European Spallation Source (ESS), will have a proton linac operating at 5\,MW power, 2\,GeV kinetic energy and 14~Hz repetition rate (3~ms pulse duration, 4\% duty cycle) for neutron production. In this design study it is proposed to double the repetition rate and compress the beam pulses to the level of microseconds in order to provide an additional 5~MW proton beam for neutrino production. The physics performance has been evaluated for such a neutrino super beam, in conjunction with a megaton-scale underground water Cherenkov neutrino detector installed at a distance of 360--550\,km from ESS. The ESS proton linac upgrades, the accumulator ring required for proton-pulse compression, the target station design and optimisation, the near and far detector complexes, and the physics potential of the facility are all described in this report. The ESS linac will be operational by 2025, at which point the implementation of upgrades for the neutrino facility could begin.

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Cite

@article{arxiv.2206.01208,
  title  = {The European Spallation Source neutrino Super Beam Conceptual Design Report},
  author = {A. Alekou and E. Baussan and A. K. Bhattacharyya and N. Blaskovic Kraljevic and M. Blennow and M. Bogomilov and B. Bolling and E. Bouquerel and O. Buchan and A. Burgman and C. J. Carlile and J. Cederkall and P. Christiansen and M. Collins and E. Cristaldo Morales and P. Cupiał and L. D'Alessi and H. Danared and D. Dancila and J. P. A. M. de André and J. P. Delahaye and M. Dracos and I. Efthymiopoulos and T. Ekelöf and M. Eshraqi and G. Fanourakis and A. Farricker and E. Fernandez-Martinez and B. Folsom and T. Fukuda and N. Gazis and B. Galnander and Th. Geralis and M. Ghosh and G. Gokbulut and L. Halić and M. Jenssen and A. Kayis Topaksu and B. Kildetoft and B. Kliček and M. Kozioł and K. Krhač and Ł. Łacny and M. Lindroos and C. Maiano and C. Marrelli and C. Martins and M. Mezzetto and N. Milas and M. Oglakci and T. Ohlsson and M. Olvegard and T. Ota and J. Park and D. Patrzalek and G. Petkov and P. Poussot and R. Johansson and S. Rosauro-Alcaraz and D. Saiang and B. Szybiński and J. Snamina and G. Stavropoulos and M. Stipčević and R. Tarkeshian and F. Terranova and J. Thomas and T. Tolba and E. Trachanas and R. Tsenov and G. Vankova-Kirilova and N. Vassilopoulos and E. Wildner and J. Wurtz and O. Zormpa and Y. Zou},
  journal= {arXiv preprint arXiv:2206.01208},
  year   = {2022}
}

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216 pages