يعرض 1 - 20 نتائج من 58 نتيجة بحث عن '"Surface detectors"', وقت الاستعلام: 0.65s تنقيح النتائج
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    Dissertation/ Thesis
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    Academic Journal

    المؤلفون: Aab A., Abreu P., Aglietta M., Albury J.M., Allekotte I., Almela A., Castillo J.A., Alvarez-Muñiz J., Batista R.A., Anastasi G.A., Anchordoqui L., Andrada B., Andringa S., Aramo C., Ferreira P.R.A., Asorey H., Assis P., Avila G., Badescu A.M., Bakalova A., Balaceanu A., Barbato F., Luz R.J.B., Becker K.H., Bellido J.A., Berat C., Bertaina M.E., Bertou X., Biermann P.L., Billoir P., Bister T., Biteau J., Blanco A., Blazek J., Bleve C., Boháčová M., Boncioli D., Bonifazi C., Arbeletche L.B., Borodai N., Botti A.M., Brack J., Bretz T., Bridgeman A., Briechle F.L., Buchholz P., Bueno A., Buitink S., Buscemi M., Caballero-Mora K.S., Caccianiga L., Calcagni L., Cancio A., Canfora F., Caracas I., Carceller J.M., Caruso R., Castellina A., Catalani F., Cataldi G., Cazon L., Cerda M., Chinellato J.A., Choi K., Chudoba J., Chytka L., Clay R.W., Cerutti A.C.C., Colalillo R., Coleman A., Coluccia M.R., Conceição R., Condorelli A., Consolati G., Contreras F., Convenga F., Covault C.E., Dasso S., Daumiller K., Dawson B.R., Day J.A., De Almeida R.M., De Jesús J., De Jong S.J., Mauro G.D., Neto J.R.T.D.M., Mitri I.D., De Oliveira J., Franco D.D.O., De Souza V., Vito E.D., Debatin J., Río M.D., Deligny O., Dhital N., Matteo A.D., Castro M.L.D., Dobrigkeit C., D'Olivo J.C., Dorosti Q., Anjos R.C.D., Dova M.T., Ebr J., Engel R., Epicoco I., Erdmann M., Escobar C.O., Etchegoyen A., Falcke H., Farmer J., Farrar G., Fauth A.C., Fazzini N., Feldbusch F., Fenu F., Fick B., Figueira J.M., Filipčič A., Fodran T., Freire M.M., Fujii T., Fuster A., Galea C., Galelli C., García B., Vegas A.L.G., Gemmeke H., Gesualdi F., Gherghel-Lascu A., Ghia P.L., Giaccari U., Giammarchi M., Giller M., Glombitza J., Gobbi F., Gollan F., Golup G., Berisso M.G., Vitale P.F.G., Gongora J.P., González N., Goos I., Góra D., Gorgi A., Gottowik M., Grubb T.D., Guarino F., Guedes G.P., Guido E., Hahn S., Halliday R., Hampel M.R., Hansen P., Harari D., Harvey V.M., Haungs A., Hebbeker T., Heck D., Hill G.C., Hojvat C., Hörandel J.R., Horvath P., Hrabovský M., Huege T., Hulsman J., Insolia A., Isar P.G., Johnsen J.A., Jurysek J., Kääpä A., Kampert K.H., Keilhauer B., Kemp J., Klages H.O., Kleifges M., Kleinfeller J., Köpke M., Mezek G.K., Lago B.L., Lahurd D., Lang R.G., De Oliveira M.A.L., Lenok V., Letessier-Selvon A., Lhenry-Yvon I., Presti D.L., Lopes L., López R., Lorek R., Luce Q., Lucero A., Payeras A.M., Malacari M., Mancarella G., Mandat D., Manning B.C., Manshanden J., Mantsch P., Marafico S., Mariazzi A.G., Mariş I.C., Marsella G., Martello D., Martinez H., Bravo O.M., Mastrodicasa M., Mathes H.J., Matthews J., Matthiae G., Mayotte E., Mazur P.O., Medina-Tanco G., Melo D., Menshikov A., Merenda K.-D., Michal S., Micheletti M.I., Miramonti L., Mockler D., Mollerach S., Montanet F., Morello C., Mostafá M., Müller A.L., Muller M.A., Mulrey K., Mussa R., Muzio M., Namasaka W.M., Nellen L., Niculescu-Oglinzanu M., Niechciol M., Nitz D., Nosek D., Novotny V., Nožka L., Nucita A., Núñez L.A., Palatka M., Pallotta J., Panetta M.P., Papenbreer P., Parente G., Parra A., Pech M., Pedreira F., Pkala J., Pelayo R., Peña-Rodriguez J., Armand J.P., Perlin M., Perrone L., Peters C., Petrera S., Pierog T., Pimenta M., Pirronello V., Platino M., Pont B., Pothast M., Privitera P., Prouza M., Puyleart A., Querchfeld S., Rautenberg J., Ravignani D., Reininghaus M., Ridky J., Riehn F., Risse M., Ristori P., Rizi V., De Carvalho W.R., Rojo J.R., Roncoroni M.J., Roth M., Roulet E., Rovero A.C., Ruehl P., Saffi S.J., Saftoiu A., Salamida F., Salazar H., Salina G., Gomez J.D.S., Sánchez F., Santos E.M., Santos E., Sarazin F., Sarmento R., Sarmiento-Cano C., Sato R., Savina P., Schäfer C., Scherini V., Schieler H., Schimassek M., Schimp M., Schlüter F., Schmidt D., Scholten O., Schovánek P., Schröder F.G., Schröder S., Schulz A., Sciutto S.J., Scornavacche M., Shellard R.C., Sigl G., Silli G., Sima O., Šmída R., Sommers P., Soriano J.F., Souchard J., Squartini R., Stadelmaier M., Stanca D., Stanič S., Stasielak J., Stassi P., Streich A., Suárez-Durán M., Sudholz T., Suomijärvi T., Supanitsky A.D., Šupík J., Szadkowski Z., Taboada A., Tapia A., Timmermans C., Tkachenko O., Tobiska P., Peixoto C.J.T., Tomé B., Elipe G.T., Travaini A., Travnicek P., Trimarelli C., Trini M., Tueros M., Ulrich R., Unger M., Urban M., Vaclavek L., Vacula M., Galicia J.F.V., Valiño I., Valore L., Vliet A.V., Varela E., Cárdenas B.V., Vásquez-Ramírez A., Veberič D., Ventura C., Quispe I.D.V., Verzi V., Vicha J., Villaseñor L., Vink J., Vorobiov S., Wahlberg H., Watson A.A., Weber M., Weindl A., Wiencke L., Wilczyński H., Winchen T., Wirtz M., Wittkowski D., Wundheiler B., Yushkov A., Zapparrata O., Zas E., Zavrtanik D., Zavrtanik M., Zehrer L., Zepeda A., Ziolkowski M., Zuccarello F.

    المصدر: Journal of Instrumentation

    Relation: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85095118470&doi=10.1088%2f1748-0221%2f15%2f10%2fP10021&partnerID=40&md5=9c881ae66d39bbc94d79df0e953646ce; 15; 10; Bassi, P., Clark, G., Rossi, B., (1953) Distribution of Arrival Times of Air Shower Particles, , https://doi.org/10.1103/PhysRev.92.441Phys.Rev.92441; Porter, N.A., Cranshaw, T.E., Beer, J.F.D., Parham, A.G., Sherwood, A.C., Observations on extensive air showers vii. the lateral distribution of energy in the electron-photon component (1958), https://doi.org/10.1080/14786435808237020Philos.Mag.A3826; Hersil, J., Escobar, I., Scott, D., Clark, G., Olbert, S., Observations of Extensive Air Showers near the Maximum of Their Longitudinal Development (1961), https://doi.org/10.1103/PhysRevLett.6.22Phys.Rev.Lett.622; Bergeson, H.E., Measurement of Light Emission from Remote Cosmic Ray Air Showers (1977), 39, p. 847. , https://doi.org/10.1103/PhysRevLett.39.847Phys.Rev.Lett; Baltrusaitis, R.M., The Utah Fly's Eye Detector (1985), 240, p. 410. , https://doi.org/10.1016/0168-9002(85)90658-8Nucl.Instrum.Meth.A; Hillas, A.M., Derivation of the eas spectrum (1969) Conf. Proc. C, 690825, p. 355; (2015) The Pierre Auger Cosmic Ray Observatory, , https://doi.org/10.1016/j.nima.2015.06.058Nucl.Instrum.Meth.A798172[1502.01323, Pierre Auger collaboration]; The Fluorescence Detector of the Pierre Auger Observatory (2010), https://doi.org/10.1016/j.nima.2010.04.023Nucl.Instrum.Meth.A620227[0907.4282, Pierre Auger collaboration]; (2017) Observation of a Large-scale Anisotropy in the Arrival Directions of Cosmic Rays above 8 × 1018eV, , https://doi.org/10.1126/science.aan4338Science3571266[1709.07321, Pierre Auger collaboration]; A measurement of the cosmic ray energy spectrum above 2.5×1018eV using the Pierre Auger Observatory (2020), https://doi.org/10.1103/PhysRevD.102.062005Phys.Rev.D102062005[2008.06486, Pierre Auger collaboration]; Reconstruction of Inclined Air Showers Detected with the Pierre Auger Observatory (2014) J. Cosmol. Astropart. Phys, 2014, p. 08019. , Pierre Auger collaboration, [1407.3214]; Argiro, S., The Offline Software Framework of the Pierre Auger Observatory (2007), https://doi.org/10.1016/j.nima.2007.07.010Nucl.Instrum.Meth.A5801485[0707.1652; (2005) Timing calibration and synchronization of surface and fluorescence detectors of the Pierre Auger Observatory, in 29th International Cosmic Ray Conference, , Pierre Auger collaboration, Pune India; Trigger and Aperture of the Surface Detector Array of the Pierre Auger Observatory (2010) Nucl. Instrum. Meth. A, 613, p. 29. , Pierre Auger collaboration, [1111.6764]; Large-scale cosmic-ray anisotropies above 4 EeV measured by the Pierre Auger Observatory (2018), https://doi.org/10.3847/1538-4357/aae689Astrophys.J.8684[1808.03579, Pierre Auger collaboration]; (2020) Cosmic-ray anisotropies in right ascension measured by the Pierre Auger Observatory, , https://doi.org/10.3847/1538-4357/ab7236Astrophys.J.891142[2002.06172, Pierre Auger collaboration]; (2011) The Pierre Auger Observatory Scaler Mode for the Study of Solar Activity Modulation of Galactic Cosmic Rays JINST, 6, p. P01003. , Pierre Auger collaboration; Calibration of the surface array of the Pierre Auger Observatory (2006), https://doi.org/10.1016/j.nima.2006.07.066Nucl.Instrum.Meth.A568839, Pierre Auger collaboration; The Pierre Auger Observatory: Contributions to the 33rd International Cosmic Ray Conference (ICRC 2013) (2013) 33rd International Cosmic Ray Conference, 7. , Pierre Auger collaboration, in [1307.5059]; A model for the time uncertainty measurements in the Auger surface detector array (2008), https://doi.org/10.1016/j.astropartphys.2007.09.007, Pierre Auger collaboration, Astropart. Phys. 28 523 [0705.1856]; The accuracy of signal measurement with the water Cherenkov detectors of the Pierre Auger Observatory (2007), 578, p. 180. , https://doi.org/10.1016/j.nima.2007.05.150Nucl.Instrum.Meth.A, Pierre Auger collaboration; Linsley, J., Scarsi, L., Arrival times of air shower particles at large distances from the axis (1962), https://doi.org/10.1103/PhysRev.128.2384Phys.Rev.1282384; James, F., (1998) Minuit, function minimization and error analysis, , CERN-D-506, CERN-D506; Newton, D., Knapp, J., Watson, A.A., The Optimum Distance at which to Determine the Size of a Giant Air Shower (2007), https://doi.org/10.1016/j.astropartphys.2006.08.003Astropart.Phys.26414[astro-ph/0608118; Nagano, M., Watson, A.A., Observations and implications of the ultrahigh-energy cosmic rays (2000) Rev. Mod. Phys, 72, p. 689. , https://doi.org/10.1103/RevModPhys.72.689; Kamata, K., Nishimura, J., The lateral and the angular structure functions of electron showers (1958), https://doi.org/10.1143/PTPS.6.93Prog.Theor.Phys.Suppl.693; Greisen, K., The extensive air showers (1956) Prog. Cosmic Ray Phys, 3, p. 1; Greisen, K., Cosmic ray showers (1960) Rev. Nucl. Part. Sci, 10, p. 63. , https://doi.org/10.1146/annurev.ns.10.120160, 000431 Ann; Hillas, A.M., Measurement of primary energy in air showers in the presence of fluctuations (1971) Proceedings of 12th International Cosmic Ray Conference, p. 1001. , Hobart Australia, pg; Angular resolution of the Pierre Auger Observatory (2005) 29th International Cosmic Ray Conference, , Pierre Auger collaboration, in Pune India; The Exposure of the Hybrid Detector of the Pierre Auger Observatory (2011) Astropart. Phys, 34, p. 368. , Pierre Auger collaboration, [1010.6162]; Hybrid Performance of the Pierre Auger Observatory (2007) 30th International Cosmic Ray Conference, p. 425. , Pierre Auger collaboration, in Merida Mexico, pg. [0706.1105]; Pierog, T., Karpenko, I., Katzy, J.M., Yatsenko, E., Werner, K., (2015) EPOS LHC: Test of collective hadronization with data measured at the CERN Large Hadron Collider, , https://doi.org/10.1103/PhysRevC.92.034906Phys.Rev.C92034906[1306.0121; Ostapchenko, S., Monte Carlo treatment of hadronic interactions in enhanced Pomeron scheme (2011), https://doi.org/10.1103/PhysRevD.83.014018Phys.Rev.D83014018, I. QGSJET-II model, [1010.1869]; Testing Hadronic Interactions at Ultrahigh Energies with Air Showers Measured by the Pierre Auger Observatory (2016), https://doi.org/10.1103/PhysRevLett.117.192001Phys.Rev.Lett.117192001, Pierre Auger collaboration, [1610.08509]; Studies on the response of a water-Cherenkov detector of the Pierre Auger Observatory to atmospheric muons using an RPC hodoscope (2020), Pierre Auger collaboration, JINST 15 P09002 [2007.04139]; (2017) Impact of Atmospheric Effects on the Energy Reconstruction of Air Showers Observed by the Surface Detectors of the Pierre Auger Observatory JINST, 12. , Pierre Auger collaboration, P02006 [1702.02835]; The effect of the geomagnetic field on cosmic ray energy estimates and large scale anisotropy searches on data from the Pierre Auger Observatory (2011) J. Cosmol. Astropart. Phys, 2011 11, p. 022. , Pierre Auger collaboration, [1111.7122]; Gaisser, T.K., Hillas, A.M., Reliability of the method of constant intensity cuts for reconstructing the average development of vertical showers (1977) Proceedings of 15th International Cosmic Ray Conference, p. 353. , Plovdiv Bulgaria, pg; Dembinski, H.P., Kégl, B., Mariş, I.C., Roth, M., Veberič, D., A likelihood method to cross-calibrate air-shower detectors (2016) Astropart. Phys, 73, p. 44. , [1503.09027]; (2017) The dynamic range of the AugerPrime Surface Detector: technical solution and physics reach, p. 397. , Pierre Auger collaboration, PoS(ICRC); An Indication of anisotropy in arrival directions of ultra-high-energy cosmic rays through comparison to the flux pattern of extragalactic gamma-ray sources (2018), https://doi.org/10.3847/2041-8213/aaa66dAstrophys.J.Lett.853L29, Pierre Auger collaboration, [1801.06160]; Multi-Messenger Physics with the Pierre Auger Observatory (2019), https://doi.org/10.3389/fspas.2019.00024Front.Astron.SpaceSci.624, Pierre Auger collaboration, [1904.11918]; Evidence for a mixed mass composition at the 'ankle' in the cosmic-ray spectrum (2016), https://doi.org/10.1016/j.physletb.2016.09.039Phys.Lett.B762288[1609.08567, Pierre Auger collaboration]; (2017) Inferences on mass composition and tests of hadronic interactions from 0.3 to 100 EeV using the water-Cherenkov detectors of the Pierre Auger Observatory, , https://doi.org/10.1103/PhysRevD.96.122003Phys.Rev.D96122003[1710.07249, Pierre Auger collaboration]; Features of the energy spectrum of cosmic rays above 2.5×1018eV using the Pierre Auger Observatory (2020), https://doi.org/10.1103/PhysRevLett.125.121106Phys.Rev.Lett.125121106, Pierre Auger collaboration; (2019) Measurement of the Cosmic Ray Flux near the Second Knee with the Pierre Auger Observatory, p. 225. , Pierre Auger collaboration, PoS(ICRC); The Pierre Auger Observatory Upgrade - mdash, , Pierre Auger collaboration, ;Preliminary Design Report, [1604.03637]; (1909) Highlights from the Pierre Auger Observatory (ICRC2019), , Pierre Auger collaboration, PoS(ICRC2019)004 [10791]; http://hdl.handle.net/11407/6000

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    Academic Journal
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    Dissertation/ Thesis
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    Dissertation/ Thesis
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    المصدر: Proceedings of the 30th International Cosmic Ray Conference, ICRC 2007. :589-592

    وصف الملف: print

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