Mostrando 2,401 - 2,420 Resultados de 16,611 Para Buscar '"Upgrade"', tiempo de consulta: 1.02s Limitar resultados
  1. 2401
    por Pozo Astigarraga, Mikel Eukeni
    Publicado 2018
    “…The ATLAS experiment at CERN is planning a second phase of upgrades to prepare for the "High Luminosity LHC", with collisions due to start in 2026. …”
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  2. 2402
    por Triossi, Andrea
    Publicado 2018
    “…The Electronics for the Drift Tube Chambers (DT) of CMS will be significantly upgraded during the LHC Long Shutdown 3 (LS3). DTs are responsible for the tracking and triggering of muons in the central region of CMS. …”
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  3. 2403
    por Gruchala, Marek Michal
    Publicado 2018
    “…The Large Hadron Collider (LHC) will be upgraded in several phases that will allow the significant expansion of its physics program and the sustainability for the requirements to maintain sensitivity for the electroweak and TeV scales. …”
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  4. 2404
  5. 2405
    por Bates, Richard
    Publicado 2018
    “…Module Development for the Phase-2 ATLAS ITk Pixel Upgrade…”
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  6. 2406
    por Bates, Richard
    Publicado 2018
    “…The Phase-II ATLAS Pixel Tracker Upgrade: Layout and Mechanics…”
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  7. 2407
    por Kobayashi, Dai
    Publicado 2018
    “…For the high luminosity upgrade of the Large Hadron Collider (HL-LHC), the instantaneous luminosity is expected to reach unprecedented values, resulting in about 200 proton-proton interactions in a typical bunch crossing. …”
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  8. 2408
    por Cavallaro, Emanuele
    Publicado 2018
    “…ATLAS, one of the two general purpose experiments at the LHC, will have to be upgraded to meet the new requirements given by the larger luminosity. …”
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  9. 2409
    por Zito, M, Yokoyama, M, Lux, T
    Publicado 2019
    “…In this document, we present the Technical Design Report of the Upgrade of the T2K Near Detector ND280. The goal of this upgrade is to improve the Near Detector performance to measure the neutrino interaction rate and to constrain the neutrino interaction cross-sections so that the uncertainty in the number of predicted events at Super-Kamiokande is reduced to about 4%. …”
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  10. 2410
    por Abe, K., Aihara, H., Ajmi, A., Andreopoulos, C., Antonova, M., Aoki, S., Asada, Y., Ashida, Y., Atherton, A., Atkin, E., Attié, D., Ban, S., Barbi, M., Barker, G.J., Barr, G., Batkiewicz, M., Beloshapkin, A., Berardi, V., Berns, L., Bhadra, S., Bian, J., Bienstock, S., Blondel, A., Boix, J., Bolognesi, S., Borg, J., Bordoni, S., Bourguille, B., Boyd, S.B., Brailsford, D., Bravar, A., Breton, D., Bronner, C., Browning, D., Buizza Avanzini, M., Cadoux, F., Calabria, N.F., Calcutt, J., Calland, R.G., Calvet, D., Campbell, T., Cao, S., Cartwright, S.L., Castillo, R., Catanesi, M.G., Ceria, W., Cervera, A., Chappell, A., Cherdack, D., Chikuma, N., Christodoulou, G., Cicerchia, M., Clifton, A., Cogo, G., Colas, P., Coleman, J., Collazuol, G., Coplowe, D., Cudd, A., Dabrowska, A., Delbart, A., De Roeck, A., De Rosa, G., Dealtry, T., Denner, P.F., Dennis, S.R., Densham, C., de Oliveira, R., Dewhurst, D., Di Lodovico, F., Dokania, N., Dolan, S., Douqa, D., Drapier, O., Duffy, K.E., Dumarchez, J., Dunne, P.J., Dziewiecki, M., Emery-Schrenk, S., Evangelisti, A., Favre, Y., Fedotov, S., Fernandez, P., Feusels, T., Finch, A.J., Fiorentini, G.A., Fiorillo, G., Fitton, M., Friend, M., Fujii, Y., Friend$^{d}$, M., Fujii$^{d}$, Y., Fujita, R., Fukuda, D., Fukuda, R., Fukuda, Y., Garcia, A., Giganti, C., Gizzarelli, F., Gonin, M., Gorin, A., Gramegna, F., Guida, M., Guigue, M., Hadley, D.R., Haegel, L., Haigh, J.T., Hamacher-Baumann, P., Hansen, D., Harada, J., Hartz, M., Hasegawa$^{d}$, T., Hastings, N.C., Hayato, Y., Hiramoto, A., Hogan, M., Howell, R., Holeczek, J., Iacob, F., Ichikawa, A.K., Ikeda, M., Imber, J., Intonti, R.A., Ishida, T., Ishida$^{d}$, T., Ishii$^{d}$, T., Ishii, T., Ishitsuka, M., Iwai, E., Iwamoto, K., Izmaylov, A., Jamieson, B., Jesus-Valls, C., Jiang, M., Johnson, S., Jo, J.H., Jonsson, P., Jung$^{a}$, C.K., Jung, C.K., Kabirnezhad, M., Kaboth, A.C., Kajita$^{a}$, T., Kakuno, H., Kameda, J., Kasetti, S., Kataoka, Y., Katori, T., Kearns$^{a}$, E., Kearns, E., Khabibullin, M., Khotjantsev, A., Kikawa, T., Kim, H., King, S., Kisiel, J., Knight, A., Knox, A., Kobayashi$^{d}$, T., Koch, L., Konaka, A., Kormos, L.L., Korzenev, A., Kose, U., Kostin, A., Koshio$^{a}$, Y., Koshio, Y., Kowalik, K., Kropp, W., Kudenko$^{f}$, Y., Kudenko, Y., Kuribayashi, S., Kurjata, R., Kutter, T., Kuze, M., Labarga, L., Lagoda, J., Lamont, I., Lamoureux, M., Laveder, M., Lawe, M., Lindner, T., Liptak, Z.J., Litchfield, R.P., Li, X., Liu, S., Long, K.R., Longhin, A., Lopez, J.P., Loverre, P.F., Ludovici, L., Lu, X., Lux, T., Maalmi, J., Magaletti, L., Magro, L., Mahn, K., Malek, M., Manly, S., Marchi, T., Maret, L., Marino, A.D., Martin, J.F., Martynenko, S., Moriyama$^{a}$, S., Nakadaira$^{d}$, T., Nakamura$^{d}$, K., Nakayama$^{a}$, S., Nakayoshi$^{d}$, K., Nishikawa$^{d}$, K., Ohta$^{d}$, R., Oyama$^{d}$, Y., Popov$^{e}$, B., Sakashita$^{d}$, K., Sekiguchi$^{d}$, T., Sekiya$^{a}$, H., Tada$^{d}$, M., Marzec, J., Matsubara, T., Matsushita, K., Matveev, V., Mavrokoridis, K., Mazzucato, E., McCarthy, M., McCauley, N., McFarland, K.S., McGrew, C., Mefodiev, A., Mehl, B., Mermod, P., Metelko, C., Mezzetto, M., Michalowski, J., Mijakowski, P., Minamino, A., Mineev, O., Mine, S., Missert, A., Miura$^{a}$, M., Mladenov, D., Monsalvo, S., Moriyama, S., Morrison, J., Mueller, Th.A., Mundet, J., Munteanu, L., Nagai, Y., Nakadaira, T., Nakahata, M., Nakajima, Y., Nakamura, A., Nakamura, K.G., Nakamura, K., Nakayama, S., Nakaya, T., Nakayoshi, K., Nantais, C., Nascimento Machado, L., Nessi, M., Ngoc, T.V., Nishikawa, K., Nishimura, Y., Noah, E., Nonnenmacher, T., Novella, P., Nowak, J., O'Keeffe, H.M., Odagawa, T., Ohta, R., Okamoto, K., Okumura, K., Okusawa, T., Orain, Y., Ovsyannikova, T., Owen, R.A., Oyama, Y., Palladino, V., Palomino, J.L., Paolone, V., Parraud, J.M., Pari, M., Parker, W., Parsa, S., Pasternak, J., Pastore, C., Pavin, M., Payne, D., Pepato, A., Perkin, J.D., Pietropaolo, F., Pickard, L., Pickering, L., Pinzon Guerra, E.S., Pizzirusso, O., Popov, B., Porthault, J., Posiadala-Zezula, M., Poutissou, J.-M., Poutissou, R., Pozimski, J., Przewlocki, P., Przybilski, H., Quilain, B., Radermacher, T., Radicioni, E., Ratoff, P.N., Ravonel, M., Rayner, M.A.M., Reinherz-Aronis, E., Resnati, F., Riallot, M., Riccio, C., Rojas, P., Romanino, G., Rondio, E., Rossi, F., Roth, S., Rychter, A., Sakashita, K., Sánchez, F., Scantamburlo, E., Scholberg, K., Schwehr, J., Scott, M., Seiya, Y., Sekiguchi, T., Sekiya, H., Sgalaberna, D., Shaikina, A., Shah, R., Shaikhiev, A., Shaker, F., Shaw, D., Shiozawa, M., Shirahige, T., Shorrock, W., Smirnov, A., Smy, M., Sobczyk, J.T., Sobel, H., Southwell, L., Spina, R., Steinmann, J., Stewart, T., Stowell, P., Suvorov, S., Suzuki, A., Suzuki$^{d}$, S.Y., Suzuki, Y., Szeptycka, M., Szoldos, S., Sztuc, A., Swierblewski, J., Tacik, R., Maruyama$^{d}$, T., Tajima, M., Takeda, A., Takeuchi, Y., Tanaka$^{a}$, H.K., Tanaka$^{c}$, H.A., Teklu, A., Thompson, L.F., Toki, W., Tomura, T., Touramanis, C., Tsukamoto$^{d}$, T., Tzanov, M., Uchida, M.A., Uchida, Y., Vagins, M., Vallari, Z., Van, N.H., Vargas, D., Vasseur, G., Wachala, T., Walter$^{a}$, C.W., Wark, D., Wascko, M.O., Weber, A., Wendell$^{a}$, R., Yanagisawa$^{b}$, C., Wendell, R., Whitehead, L., Wilkes, R.J., Wilking, M.J., Wilson, J.R., Wilson, R.J., Wret, C., Yamada$^{d}$, Y., Yamamoto, K., Yanagisawa, C., Yang, G., Yano, T., Yasutome, K., Yen, S., Yershov, N., Yokoyama$^{a}$, M., Zambelli$^{d}$, L., Yokoyama, M., Yoshida, T., Yuan, T., Yu, M., Zalewska, A., Zalipska, J., Zambelli, L., Zaremba, K., Ziembicki, M., Zilberman, P., Zimmerman, E.D., Zito, M.
    Publicado 2019
    “…In this document, we present the Technical Design Report of the Upgrade of the T2K Near Detector ND280. The goal of this upgrade is to improve the Near Detector performance to measure the neutrino interaction rate and to constrain the neutrino interaction cross-sections so that the uncertainty in the number of predicted events at Super-Kamiokande is reduced to about 4%. …”
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  11. 2411
    por Steinbrueck, Georg
    Publicado 2018
    “…The LHC is planning an upgrade program which will bring the luminosity up to about 7.5$\times10^{34}\textrm{ cm}^{-2}\textrm{s}^{-1}$ in 2027, with the goal of an integrated luminosity of 3000 fb$^{-1}$ by the end of 2037. …”
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  12. 2412
  13. 2413
  14. 2414
    por Kobayashi, Dai
    Publicado 2019
    “…For the high luminosity upgrade of the Large Hadron Collider (HL-LHC), the instanta- neous luminosity is expected to reach unprecedented values, resulting in about 200 proton-proton interactions in a typical bunch crossing. …”
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    Enlace del recurso
  15. 2415
    por Denysenko, Vadym
    Publicado 2019
    “…The LHCb Collaboration is planning an Upgrade II, a flavour physics experiment for the high luminosity era. …”
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  16. 2416
    por Brice, Maximilien
    Publicado 2019
    “…upgrade of magnets in Hall 867 - Magnets to be installed B157…”
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  17. 2417
  18. 2418
  19. 2419
    por Shaked, Dan, Sheppard, Damian Joseph
    Publicado 2019
    “…The largest phase-1 upgrade project for the ATLAS Muon System is the replacement of the present first station in the forward regions with the so-called New Small Wheels (NSWs) during the long-LHC shutdown in 2019/20. …”
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  20. 2420
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