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Showing 1–4 of 4 results for author: Suwa, Y

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  1. arXiv:2101.05269  [pdf, other

    astro-ph.IM astro-ph.HE hep-ex physics.ins-det

    Supernova Model Discrimination with Hyper-Kamiokande

    Authors: Hyper-Kamiokande Collaboration, :, K. Abe, P. Adrich, H. Aihara, R. Akutsu, I. Alekseev, A. Ali, F. Ameli, I. Anghel, L. H. V. Anthony, M. Antonova, A. Araya, Y. Asaoka, Y. Ashida, V. Aushev, F. Ballester, I. Bandac, M. Barbi, G. J. Barker, G. Barr, M. Batkiewicz-Kwasniak, M. Bellato, V. Berardi, M. Bergevin , et al. (478 additional authors not shown)

    Abstract: Core-collapse supernovae are among the most magnificent events in the observable universe. They produce many of the chemical elements necessary for life to exist and their remnants -- neutron stars and black holes -- are interesting astrophysical objects in their own right. However, despite millennia of observations and almost a century of astrophysical study, the explosion mechanism of core-colla… ▽ More

    Submitted 20 July, 2021; v1 submitted 13 January, 2021; originally announced January 2021.

    Comments: 21 pages, 7 figures. Article based on thesis published as arXiv:2002.01649. v2: added references and some explanations in response to reviewer comments

    Journal ref: Astrophys.J. 916 (2021) 15

  2. arXiv:2009.00794  [pdf, ps, other

    physics.ins-det hep-ex

    The Hyper-Kamiokande Experiment -- Snowmass LOI

    Authors: Hyper-Kamiokande Collaboration, :, K. Abe, P. Adrich, H. Aihara, R. Akutsu, I. Alekseev, A. Ali, F. Ameli, L. H. V. Anthony, A. Araya, Y. Asaoka, V. Aushev, I. Bandac, M. Barbi, G. Barr, M. Batkiewicz-Kwasniak, M. Bellato, V. Berardi, L. Bernard, E. Bernardini, L. Berns, S. Bhadra, J. Bian, A. Blanchet , et al. (366 additional authors not shown)

    Abstract: Hyper-Kamiokande is the next generation underground water Cherenkov detector that builds on the highly successful Super-Kamiokande experiment. The detector which has an 8.4~times larger effective volume than its predecessor will be located along the T2K neutrino beamline and utilize an upgraded J-PARC beam with 2.6~times beam power. Hyper-K's low energy threshold combined with the very large fiduc… ▽ More

    Submitted 1 September, 2020; originally announced September 2020.

    Comments: 6 pages, prepared as Snowmass2021 LOI

  3. arXiv:1805.04163  [pdf, other

    physics.ins-det astro-ph.SR hep-ex

    Hyper-Kamiokande Design Report

    Authors: Hyper-Kamiokande Proto-Collaboration, :, K. Abe, Ke. Abe, H. Aihara, A. Aimi, R. Akutsu, C. Andreopoulos, I. Anghel, L. H. V. Anthony, M. Antonova, Y. Ashida, V. Aushev, M. Barbi, G. J. Barker, G. Barr, P. Beltrame, V. Berardi, M. Bergevin, S. Berkman, L. Berns, T. Berry, S. Bhadra, D. Bravo-Berguño, F. d. M. Blaszczyk , et al. (291 additional authors not shown)

    Abstract: On the strength of a double Nobel prize winning experiment (Super)Kamiokande and an extremely successful long baseline neutrino programme, the third generation Water Cherenkov detector, Hyper-Kamiokande, is being developed by an international collaboration as a leading worldwide experiment based in Japan. The Hyper-Kamiokande detector will be hosted in the Tochibora mine, about 295 km away from th… ▽ More

    Submitted 28 November, 2018; v1 submitted 9 May, 2018; originally announced May 2018.

    Comments: 325 pages

  4. arXiv:1611.06118  [pdf, other

    hep-ex hep-ph physics.ins-det

    Physics Potentials with the Second Hyper-Kamiokande Detector in Korea

    Authors: Hyper-Kamiokande proto-collaboration, :, K. Abe, Ke. Abe, S. H. Ahn, H. Aihara, A. Aimi, R. Akutsu, C. Andreopoulos, I. Anghel, L. H. V. Anthony, M. Antonova, Y. Ashida, V. Aushev, M. Barbi, G. J. Barker, G. Barr, P. Beltrame, V. Berardi, M. Bergevin, S. Berkman, L. Berns, T. Berry, S. Bhadra, D. Bravo-Bergu no , et al. (331 additional authors not shown)

    Abstract: Hyper-Kamiokande consists of two identical water-Cherenkov detectors of total 520~kt with the first one in Japan at 295~km from the J-PARC neutrino beam with 2.5$^{\textrm{o}}$ Off-Axis Angles (OAAs), and the second one possibly in Korea in a later stage. Having the second detector in Korea would benefit almost all areas of neutrino oscillation physics mainly due to longer baselines. There are sev… ▽ More

    Submitted 26 March, 2018; v1 submitted 18 November, 2016; originally announced November 2016.

    Comments: 102 pages, 49 figures. Accepted by PTEP

    Journal ref: Prog Theor Exp Phys (2018)