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Modeling the triple-GEM detector response to background particles for the CMS Experiment

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arxiv 2107.03621 v1 pith:FIBCVH7G submitted 2021-07-08 physics.ins-det hep-ex

Modeling the triple-GEM detector response to background particles for the CMS Experiment

M. Abbas , M. Abbrescia , H. Abdalla , A. Abdelalim , S. AbuZeid , A. Agapitos , A. Ahmad , A. Ahmed
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W. Ahmed C. Aim\`e C. Aruta I. Asghar P. Aspell C. Avila I. Azhgirey J. Babbar Y. Ban R. Band S. Bansal L. Benussi V. Bhatnagar M. Bianco S. Bianco K. Black L. Borgonovi O. Bouhali A. Braghieri S. Braibant S. Butalla S. Calzaferri M. Caponero F. Cassese A. Castaneda N. Cavallo S. S. Chauhan A. Colaleo A. Conde Garcia M. Dalchenko A. De Iorio G. De Lentdecker D. Dell Olio G. De Robertis W. Dharmaratna S. Dildick B. Dorney R. Erbacher F. Fabozzi F. Fallavollita A. Ferraro D. Fiorina E. Fontanesi M. Franco C. Galloni P. Giacomelli S. Gigli J. Gilmore M. Gola M. Gruchala A. Gutierrez R. Hadjiiska T. Hakkarainen J. Hauser K. Hoepfner M. Hohlmann H. Hoorani T. Huang P. Iaydjiev A. Irshad A. Iorio F. Ivone J. Jaramillo V. Jha A. Juodagalvis E. Juska B. Kailasapathy T. Kamon Y. Kang P. Karchin A. Kaur H. Kaur H. Keller H. Kim J. Kim S. Kim B. Ko A. Kumar S. Kumar H. Kumawat N. Lacalamita J.S.H. Lee A. Levin Q. Li F. Licciulli L. Lista K. Liyanage F. Loddo M. Luhach M. Maggi Y. Maghrbi N. Majumdar K. Malagalage S. Malhotra S. Mallows S. Martiradonna N. Mccoll C. McLean J. Merlin M. Misheva D. Mishra G. Mocellin L. Moureaux A. Muhammad S. Muhammad S. Mukhopadhyay M. Naimuddin P. Netrakanti S. Nuzzo R. Oliveira L. Pant P. Paolucci I.C. Park L. Passamonti G. Passeggio A. Peck A. Pellecchia N. Perera L. Petre H. Petrow D. Piccolo D. Pierluigi G. Raffone M. Rahmani F. Ramirez A. Ranieri G. Rashevski B. Regnery M. Ressegotti C. Riccardi M. Rodozov E. Romano C. Roskas B. Rossi P. Rout D. Roy J. D. Ruiz A. Russo A. Safonov A. K. Sahota D. Saltzberg G. Saviano A. Shah A. Sharma R. Sharma T. Sheokand M. Shopova F. Simone J. Singh U. Sonnadara E. Starling B. Stone J. Sturdy G. Sultanov Z. Szillasi D. Teague D. Teyssier T. Tuuva M. Tytgat I. Vai N. Vanegas R. Venditti P. Verwilligen W. Vetens A. K. Virdi P. Vitulo A. Wajid D. Wang K. Wang I. J. Watson N. Wickramage W. Jang D.D.C. Wickramarathna S. Yang Y. Yang U. Yang J. Yongho I. Yoon Z. You I. Yu S. Zaleski (on behalf of the CMS Collaboration)
This is my paper
classification physics.ins-det hep-ex
keywords detectorratebackgroundchambersdataestimatesimulationexperiment
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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An estimate of environmental background hit rate on triple-GEM chambers is performed using Monte Carlo (MC) simulation and compared to data taken by test chambers installed in the CMS experiment (GE1/1) during Run-2 at the Large Hadron Collider (LHC). The hit rate is measured using data collected with proton-proton collisions at 13 TeV and a luminosity of 1.5$\times10^{34}$ cm$^{-2}$ s$^{-1}$. The simulation framework uses a combination of the FLUKA and Geant4 packages to obtain the hit rate. FLUKA provides the radiation environment around the GE1/1 chambers, which is comprised of the particle flux with momentum direction and energy spectra ranging from $10^{-11}$ to $10^{4}$ MeV for neutrons, $10^{-3}$ to $10^{4}$ MeV for $\gamma$'s, $10^{-2}$ to $10^{4}$ MeV for $e^{\pm}$, and $10^{-1}$ to $10^{4}$ MeV for charged hadrons. Geant4 provides an estimate of detector response (sensitivity) based on an accurate description of detector geometry, material composition and interaction of particles with the various detector layers. The MC simulated hit rate is estimated as a function of the perpendicular distance from the beam line and agrees with data within the assigned uncertainties of 10-14.5%. This simulation framework can be used to obtain a reliable estimate of background rates expected at the High Luminosity LHC.

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