4.3 Article

The performance of the CMS muon detector in proton-proton collisions at √s=7 TeV at the LHC

Journal

JOURNAL OF INSTRUMENTATION
Volume 8, Issue -, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1088/1748-0221/8/11/P11002

Keywords

Muon spectrometers; Particle tracking detectors; Particle tracking detectors (Gaseous detectors)

Funding

  1. Austrian Federal Ministry of Science and Research
  2. Austrian Science Fund
  3. Belgian Fonds de la Recherche Scientifique
  4. Fonds voor Wetenschappelijk Onderzoek
  5. Brazilian Funding Agency (CNPq)
  6. Brazilian Funding Agency (CAPES)
  7. Brazilian Funding Agency (FAPERJ)
  8. Brazilian Funding Agency (FAPESP)
  9. Bulgarian Ministry of Education and Science
  10. CERN
  11. Chinese Academy of Sciences
  12. Ministry of Science and Technology
  13. National Natural Science Foundation of China
  14. Colombian Funding Agency (COLCIENCIAS)
  15. Croatian Ministry of Science, Education and Sport
  16. Research Promotion Foundation, Cyprus
  17. Ministry of Education and Research [SF0690030s09]
  18. European Regional Development Fund, Estonia
  19. Academy of Finland
  20. Finnish Ministry of Education and Culture
  21. Helsinki Institute of Physics
  22. Institut National de Physique Nucleaire et de Physique des Particules / CNRS
  23. Commissariat a l'Energie Atomique et aux Energies Alternatives / CEA, France
  24. Bundesministerium fur Bildung und Forschung
  25. Deutsche Forschungsgemeinschaft
  26. Helmholtz-Gemeinschaft Deutscher Forschungszentren, Germany
  27. General Secretariat for Research and Technology, Greece
  28. National Scientific Research Foundation
  29. National Office for Research and Technology, Hungary
  30. Department of Atomic Energy
  31. Department of Science and Technology, India
  32. Institute for Studies in Theoretical Physics and Mathematics, Iran
  33. Science Foundation, Ireland
  34. Istituto Nazionale di Fisica Nucleare, Italy
  35. Korean Ministry of Education, Science and Technology
  36. World Class University program of NRF, Republic of Korea
  37. Lithuanian Academy of Sciences
  38. CINVESTAV
  39. CONACYT
  40. SEP
  41. UASLP-FAI
  42. Ministry of Science and Innovation, New Zealand
  43. Pakistan Atomic Energy Commission
  44. Ministry of Science and Higher Education
  45. National Science Centre, Poland
  46. Fundacao para a Ciencia e a Tecnologia, Portugal
  47. JINR, Dubna
  48. Ministry of Education and Science of the Russian Federation
  49. Federal Agency of Atomic Energy of the Russian Federation
  50. Russian Academy of Sciences
  51. Russian Foundation for Basic Research
  52. Ministry of Education, Science and Technological Development of Serbia
  53. Secretaria de Estado de Investigacion
  54. Desarrollo e Innovacion and Programa Consolider-Ingenio, Spain
  55. ETH Board
  56. ETH Zurich
  57. PSI
  58. SNF
  59. UniZH
  60. Canton Zurich
  61. SER
  62. National Science Council, Taipei
  63. Thailand Center of Excellence in Physics
  64. Institute for the Promotion of Teaching Science and Technology of Thailand
  65. Special Task Force for Activating Research
  66. National Science and Technology Development Agency of Thailand
  67. Scientific and Technical Research Council of Turkey
  68. Turkish Atomic Energy Authority
  69. Science and Technology Facilities Council, U.K.
  70. US Department of Energy
  71. US National Science Foundation
  72. Marie-Curie programme
  73. European Research Council
  74. EPLANET (European Union)
  75. Leventis Foundation
  76. A. P. Sloan Foundation
  77. Alexander von Humboldt Foundation
  78. Belgian Federal Science Policy Office
  79. Fonds pour la Formation a la Recherche dans l'Industrie et dans l'Agriculture (FRIA-Belgium)
  80. Agentschap voor Innovatie door Wetenschap en Technologie (IWT-Belgium)
  81. Ministry of Education, Youth and Sports (MEYS) of Czech Republic
  82. Council of Science and Industrial Research, India
  83. Compagnia di San Paolo (Torino)
  84. HOMING PLUS programme of Foundation for Polish Science
  85. EU, Regional Development Fund
  86. Thalis and Aristeia programmes
  87. EU-ESF
  88. Greek NSRF
  89. Science and Technology Facilities Council [ST/L00609X/1 GRIDPP, ST/K001604/1 CMS Upgrade, ST/K001256/1, ST/K003542/1 GRID PP, ST/K001604/1 SuperNEMO, ST/J005665/1, ST/K001604/1 LHCb, ST/L00609X/1, ST/I505572/1, ST/J004901/1, ST/K003844/1, ST/K001604/1 T2K, ST/I005912/1 GRIDPP, ST/I505580/1, ST/K001639/1, CMS, ST/F007434/1, ST/K001604/1 DMUK, ST/K001604/1 LHCb Upgrades, ST/K001604/1 GRIDPP, ST/K001604/1 MICE/UKNF, ST/K003844/1 GRIDPP, ST/I005912/1, ST/F007094/1, ST/K001604/1] Funding Source: researchfish
  90. STFC [ST/I505572/1, ST/J004901/1, ST/F007094/1, ST/H00081X/2, ST/K001604/1, ST/K003844/1, ST/F007434/1, ST/L00609X/1, ST/K001639/1, ST/I005912/1, ST/I505580/1, ST/J005665/1] Funding Source: UKRI
  91. Direct For Mathematical & Physical Scien
  92. Division Of Physics [1211067, 1306951, 0969555, 0906479] Funding Source: National Science Foundation
  93. Division Of Physics
  94. Direct For Mathematical & Physical Scien [1205960, 1151640, 1314131] Funding Source: National Science Foundation

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The performance of all subsystems of the CMS muon detector has been studied by using a sample of proton-proton collision data at root s = 7TeV collected at the LHC in 2010 that corresponds to an integrated luminosity of approximately 40 pb(-1). The measured distributions of the major operational parameters of the drift tube (DT), cathode strip chamber (CSC), and resistive plate chamber (RPC) systems met the design specifications. The spatial resolution per chamber was 80-120 mu m in the DTs, 40-150 mu m in the CSCs, and 0.8-1.2 cm in the RPCs. The time resolution achievable was 3 ns or better per chamber for all 3 systems. The efficiency for reconstructing hits and track segments originating from muons traversing the muon chambers was in the range 95-98%. The CSC and DT systems provided muon track segments for the CMS trigger with over 96% efficiency, and identified the correct triggering bunch crossing in over 99.5% of such events. The measured performance is well reproduced by Monte Carlo simulation of the muon system down to the level of individual channel response. The results confirm the high efficiency of the muon system, the robustness of the design against hardware failures, and its effectiveness in the discrimination of backgrounds.

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