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First results from the upgrade of the Extreme Energy Events experiment
The Extreme Energy Events (EEE) experiment is the largest system in the world completely implemented with Multigap Resistive Plate Chambers (MRPCs). Presently, it consists of a network of 59 muon telescopes, each made of 3 MRPCs, devoted to the study of secondary cosmic rays. Its stations, sometimes...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
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Lenguaje: | eng |
Publicado: |
2018
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1088/1748-0221/14/08/C08005 http://cds.cern.ch/record/2631507 |
_version_ | 1780959524898734080 |
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author | Abbrescia, M. Avanzini, C. Baldini, L. Baldini Ferroli, R. Batignani, L.G. Battaglieri, M. Boi, S. Bossini, E. Carnesecchi, F. Chiavassa, A. Cicalo, C. Cifarelli, L. Coccetti, F. Coccia, E. Corvaglia, A. De Gruttola, D. De Pasquale, S. Fabbri, L. Frolov, V. Galante, L. Galeotti, P. Garbini, M. Gemme, G. Gnesi, I. Grazzi, S. Gustavino, C. Hatzifotiadou, D. La Rocca, P. Mandaglio, G. Maragoto Rodriguez, O. Maron, G. Mazziotta, M.N. Miozzi, S. Nania, R. Noferini, F. Nozzoli, F. Palmonari, F. Panareo, M. Panetta, M.P. Paoletti, R. Park, W. Pellegrino, C. Perasso, L. Pilo, F. Piragino, G. Pisano, S. Riggi, F. Righini, G.C. Ripoli, C. Rizzi, M. Sartorelli, G. Scapparone, E. Schioppa, M. Scribano, A. Selvi, M. Serci, S. Squarcia, S. Taiuti, M. Terreni, G. Trifirò, A. Trimarchi, M. Vistoli, M.C. Votano, L. Williams, M.C.S. Zheng, L. Zichichi, A. Zuyeuski, R. |
author_facet | Abbrescia, M. Avanzini, C. Baldini, L. Baldini Ferroli, R. Batignani, L.G. Battaglieri, M. Boi, S. Bossini, E. Carnesecchi, F. Chiavassa, A. Cicalo, C. Cifarelli, L. Coccetti, F. Coccia, E. Corvaglia, A. De Gruttola, D. De Pasquale, S. Fabbri, L. Frolov, V. Galante, L. Galeotti, P. Garbini, M. Gemme, G. Gnesi, I. Grazzi, S. Gustavino, C. Hatzifotiadou, D. La Rocca, P. Mandaglio, G. Maragoto Rodriguez, O. Maron, G. Mazziotta, M.N. Miozzi, S. Nania, R. Noferini, F. Nozzoli, F. Palmonari, F. Panareo, M. Panetta, M.P. Paoletti, R. Park, W. Pellegrino, C. Perasso, L. Pilo, F. Piragino, G. Pisano, S. Riggi, F. Righini, G.C. Ripoli, C. Rizzi, M. Sartorelli, G. Scapparone, E. Schioppa, M. Scribano, A. Selvi, M. Serci, S. Squarcia, S. Taiuti, M. Terreni, G. Trifirò, A. Trimarchi, M. Vistoli, M.C. Votano, L. Williams, M.C.S. Zheng, L. Zichichi, A. Zuyeuski, R. |
author_sort | Abbrescia, M. |
collection | CERN |
description | The Extreme Energy Events (EEE) experiment is the largest system in the world completely implemented with Multigap Resistive Plate Chambers (MRPCs). Presently, it consists of a network of 59 muon telescopes, each made of 3 MRPCs, devoted to the study of secondary cosmic rays. Its stations, sometimes hundreds of kilometers apart, are synchronized at a few nanoseconds level via a clock signal delivered by the Global Positioning System. The data collected during centrally coordinated runs are sent to INFN CNAF, the largest center for scientific computing in Italy, where they are reconstructed and made available for analysis. Thanks to the on-line monitoring and data transmission, EEE operates as a single coordinated system spread over an area of about 3 × 105 km2. In 2017, the EEE collaboration started an important upgrade program, aiming to extend the network with 20 additional stations, with the option to have more in the future. This implies the construction, testing and commissioning of 60 chambers, for a total detector surface of around 80 m2. In this paper, aspects related to this challenging endeavor are covered, starting from the technological solutions chosen to build these state-of-the-art detectors, to the quality controls and the performance tests carried on. |
id | cern-2631507 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2018 |
record_format | invenio |
spelling | cern-26315072023-03-14T20:16:17Zdoi:10.1088/1748-0221/14/08/C08005http://cds.cern.ch/record/2631507engAbbrescia, M.Avanzini, C.Baldini, L.Baldini Ferroli, R.Batignani, L.G.Battaglieri, M.Boi, S.Bossini, E.Carnesecchi, F.Chiavassa, A.Cicalo, C.Cifarelli, L.Coccetti, F.Coccia, E.Corvaglia, A.De Gruttola, D.De Pasquale, S.Fabbri, L.Frolov, V.Galante, L.Galeotti, P.Garbini, M.Gemme, G.Gnesi, I.Grazzi, S.Gustavino, C.Hatzifotiadou, D.La Rocca, P.Mandaglio, G.Maragoto Rodriguez, O.Maron, G.Mazziotta, M.N.Miozzi, S.Nania, R.Noferini, F.Nozzoli, F.Palmonari, F.Panareo, M.Panetta, M.P.Paoletti, R.Park, W.Pellegrino, C.Perasso, L.Pilo, F.Piragino, G.Pisano, S.Riggi, F.Righini, G.C.Ripoli, C.Rizzi, M.Sartorelli, G.Scapparone, E.Schioppa, M.Scribano, A.Selvi, M.Serci, S.Squarcia, S.Taiuti, M.Terreni, G.Trifirò, A.Trimarchi, M.Vistoli, M.C.Votano, L.Williams, M.C.S.Zheng, L.Zichichi, A.Zuyeuski, R.First results from the upgrade of the Extreme Energy Events experimentphysics.ins-detDetectors and Experimental TechniquesThe Extreme Energy Events (EEE) experiment is the largest system in the world completely implemented with Multigap Resistive Plate Chambers (MRPCs). Presently, it consists of a network of 59 muon telescopes, each made of 3 MRPCs, devoted to the study of secondary cosmic rays. Its stations, sometimes hundreds of kilometers apart, are synchronized at a few nanoseconds level via a clock signal delivered by the Global Positioning System. The data collected during centrally coordinated runs are sent to INFN CNAF, the largest center for scientific computing in Italy, where they are reconstructed and made available for analysis. Thanks to the on-line monitoring and data transmission, EEE operates as a single coordinated system spread over an area of about 3 × 105 km2. In 2017, the EEE collaboration started an important upgrade program, aiming to extend the network with 20 additional stations, with the option to have more in the future. This implies the construction, testing and commissioning of 60 chambers, for a total detector surface of around 80 m2. In this paper, aspects related to this challenging endeavor are covered, starting from the technological solutions chosen to build these state-of-the-art detectors, to the quality controls and the performance tests carried on.The Extreme Energy Events (EEE) experiment is the largest system in the world completely implemented with Multigap Resistive Plate Chambers (MRPCs). Presently, it consists of a network of 59 muon telescopes, each made of 3 MRPCs, devoted to the study of secondary cosmic rays. Its stations, sometimes hundreds of kilometers apart, are synchronized at a few nanoseconds level via a clock signal delivered by the Global Positioning System. The data collected during centrally coordinated runs are sent to INFN CNAF, the largest center for scientific computing in Italy, where they are reconstructed and made available for analysis. Thanks to the on-line monitoring and data transmission, EEE operates as a single coordinated system spread over an area of about $3 \times 10^5$ km$^2$. In 2017, the EEE collaboration started an important upgrade program, aiming to extend the network with 20 additional stations, with the option to have more in the future. This implies the construction, testing and commissioning of 60 chambers, for a total detector surface of around 80 m$^2$. In this paper, aspects related to this challenging endeavor are covered, starting from the technological solutions chosen to build these state-of-the-art detectors, to the quality controls and the performance tests carried on.arXiv:1806.03913oai:cds.cern.ch:26315072018-06-11 |
spellingShingle | physics.ins-det Detectors and Experimental Techniques Abbrescia, M. Avanzini, C. Baldini, L. Baldini Ferroli, R. Batignani, L.G. Battaglieri, M. Boi, S. Bossini, E. Carnesecchi, F. Chiavassa, A. Cicalo, C. Cifarelli, L. Coccetti, F. Coccia, E. Corvaglia, A. De Gruttola, D. De Pasquale, S. Fabbri, L. Frolov, V. Galante, L. Galeotti, P. Garbini, M. Gemme, G. Gnesi, I. Grazzi, S. Gustavino, C. Hatzifotiadou, D. La Rocca, P. Mandaglio, G. Maragoto Rodriguez, O. Maron, G. Mazziotta, M.N. Miozzi, S. Nania, R. Noferini, F. Nozzoli, F. Palmonari, F. Panareo, M. Panetta, M.P. Paoletti, R. Park, W. Pellegrino, C. Perasso, L. Pilo, F. Piragino, G. Pisano, S. Riggi, F. Righini, G.C. Ripoli, C. Rizzi, M. Sartorelli, G. Scapparone, E. Schioppa, M. Scribano, A. Selvi, M. Serci, S. Squarcia, S. Taiuti, M. Terreni, G. Trifirò, A. Trimarchi, M. Vistoli, M.C. Votano, L. Williams, M.C.S. Zheng, L. Zichichi, A. Zuyeuski, R. First results from the upgrade of the Extreme Energy Events experiment |
title | First results from the upgrade of the Extreme Energy Events experiment |
title_full | First results from the upgrade of the Extreme Energy Events experiment |
title_fullStr | First results from the upgrade of the Extreme Energy Events experiment |
title_full_unstemmed | First results from the upgrade of the Extreme Energy Events experiment |
title_short | First results from the upgrade of the Extreme Energy Events experiment |
title_sort | first results from the upgrade of the extreme energy events experiment |
topic | physics.ins-det Detectors and Experimental Techniques |
url | https://dx.doi.org/10.1088/1748-0221/14/08/C08005 http://cds.cern.ch/record/2631507 |
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