• DocumentCode
    1169037
  • Title

    The Muon Spectrometer Barrel Level-1 Trigger of the ATLAS Experiment at LHC

  • Author

    Aloisio, A. ; Carlino, G. ; Conventi, F. ; De Asmundis, R. ; Izzo, V. ; Migliaccio, A. ; Ciapetti, G. ; Di Mattia, A. ; Luci, C. ; Luminari, L. ; Nisati, A. ; Pastore, F. ; Petrolo, E. ; Vari, R. ; Veneziano, S. ; Salamon, A.

  • Author_Institution
    Ist. Nazionale di Fisica Nucl., Napoli
  • Volume
    53
  • Issue
    4
  • fYear
    2006
  • Firstpage
    2446
  • Lastpage
    2451
  • Abstract
    The proton-proton beam crossing at the LHC accelerator at CERN will have a rate of 40 MHz at the project luminosity. The ATLAS Trigger System has been designed in three levels in order to select only interesting physics events reducing from that rate of 40 MHz to the foreseen storage rate of about 200 Hz. The First Level reduces the output rate to about 100 kHz. The ATLAS Muon Spectrometer has been designed to perform stand-alone triggering and measurement of Muon transverse momentum up to 1 TeV/c with good resolution (from 3% at 10 GeV/c up to 10% at 1 TeV/c). In the Barrel region of the Muon Spectrometer the Level-1 trigger is given by means of three layers of resistive plate chamber detectors (RPC): a gaseous detector working in avalanche mode composed by two plates of high-resistivity bakelite and two orthogonal planes of read-out strips. The logic of the Level-1 barrel Muon trigger is based on the search of patterns of RPC hits in the three layers consistent with a high transverse momentum Muon track originated from the interaction vertex. The associated trigger electronics is based on dedicated processors, the Coincidence Matrix boards, performing space coincidences and time gates and providing the RPC readout as well. A detailed simulation of the ATLAS Experiment and of both the hardware components and the logic of the Level-1 Muon Trigger in the barrel of the Muon Spectrometer has been performed. This simulation has been used not only to evaluate the performances of the system but also to define the hardware set-up such as the cabling of both the trigger detectors and the trigger electronics modules. A description of both the Level-1 Muon Trigger system in the barrel and the RPC detectors, with their cosmic rays quality tests, will be presented together with the trigger performances and rates calculations evaluated for Muons over a wide range of pT and preliminary studies on the impact of accidental triggers due to low energy background particles - - in the experimental area
  • Keywords
    muon detection; nuclear electronics; particle spectrometers; particle tracks; position sensitive particle detectors; readout electronics; trigger circuits; ATLAS muon spectrometer; ATLAS trigger system; CERN; LHC accelerator; RFC; avalanche mode; barrel region; coincidence matrix board; cosmic rays; gaseous detector; hardware components; high-resistivity bakelite; low energy background particles; muon spectrometer barrel level-1 trigger; muon track; muon transverse momentum; muon trigger; orthogonal planes; proton-proton beam; read-out strips; resistive plate chamber detectors; space coincidences; stand-alone triggering; storage rate; time gates; trigger detectors; trigger electronic modules; Detectors; Hardware; Large Hadron Collider; Logic; Mesons; Particle beams; Performance evaluation; Physics; Proton accelerators; Spectroscopy; Mesons; trigger circuits; triggering;
  • fLanguage
    English
  • Journal_Title
    Nuclear Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9499
  • Type

    jour

  • DOI
    10.1109/TNS.2006.877044
  • Filename
    1684125