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Accès ouvert déclaré 2023 article

Performance of the CMS High Granularity Calorimeter prototype to charged pion beams of 20–300 GeV/c

13Citations signalées — pas une note de qualité
56Institutions déclarées
16Pays d’affiliation déclarés

Résumé fourni par la source

Abstract The upgrade of the CMS experiment for the high luminosity operation of the LHC comprises the replacement of the current endcap calorimeter by a high granularity sampling calorimeter (HGCAL). The electromagnetic section of the HGCAL is based on silicon sensors interspersed between lead and copper (or copper tungsten) absorbers. The hadronic section uses layers of stainless steel as an absorbing medium and silicon sensors as an active medium in the regions of high radiation exposure, and scintillator tiles directly read out by silicon photomultipliers in the remaining regions. As part of the development of the detector and its readout electronic components, a section of a silicon-based HGCAL prototype detector along with a section of the CALICE AHCAL prototype was exposed to muons, electrons and charged pions in beam test experiments at the H2 beamline at the CERN SPS in October 2018. The AHCAL uses the same technology as foreseen for the HGCAL but with much finer longitudinal segmentation. The performance of the calorimeters in terms of energy response and resolution, longitudinal and transverse shower profiles is studied using negatively charged pions, and is compared to GEANT4 predictions. This is the first report summarizing results of hadronic showers measured by the HGCAL prototype using beam test data.

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Contrôle bibliographique ouvert

DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
Performance of the CMS High Granularity Calorimeter prototype to charged pion beams of 20–300 GeV/c
Date Crossref
01/08/2023
Éditeur
IOP Publishing
Type
journal-article

Ce recoupement confirme des métadonnées liées au DOI. Il ne confirme ni la méthode ni les conclusions de l’étude et ne compte pas comme une seconde source scientifique indépendante.

Institutions déclarées

Boğaziçi UniversityGeorgian Technical UniversityNational Central UniversityEuropean Organization for Nuclear ResearchTexas Tech UniversityUniversity of IowaCarnegie Mellon UniversityIndian Institute of Science Education and Research PuneFermi National Accelerator LaboratoryDeutsches Elektronen-Synchrotron DESYUniversity of Maryland, College ParkNational Technical University of AthensUniversity of Wisconsin–MadisonUniversity of RochesterCentre National de la Recherche ScientifiqueÉcole PolytechniqueLaboratoire Leprince-RinguetIndian Institute of Technology MadrasInstitute of High Energy PhysicsInstitut National de Physique Nucléaire et de Physique des ParticulesCommissariat à l'Énergie Atomique et aux Énergies AlternativesCEA Paris-SaclayInstitut de Recherche sur les Lois Fondamentales de l'UniversNorthwestern UniversitySaha Institute of Nuclear PhysicsZhejiang UniversityNorthern Illinois UniversityImperial College LondonUniversität HamburgHamburg Institut (Germany)Université Paris-SaclayLaboratoire de Physique des 2 Infinis Irène Joliot-CurieFlorida State UniversityFlorida A&M University - Florida State University College of EngineeringUniversity of California, Santa BarbaraIstanbul Technical UniversityBeijing Shijingshan HospitalBaylor UniversityNational Taiwan UniversityUniversity of MinnesotaUniversity of SplitTata Institute of Fundamental ResearchBoston UniversityUniversity of Massachusetts BostonCukurova UniversityUniversity of MalayaMax Planck Institute for PhysicsFudan UniversityUniversity of Notre DameBrown UniversityKansas State UniversityTsinghua UniversityFlorida Institute of TechnologyUtrecht UniversityNational Institute for Subatomic PhysicsChulalongkorn University

Une affiliation ne permet pas de déduire la nationalité d’un auteur.

Sujets associés

Particle physics theoretical and experimental studiesParticle Detector Development and PerformanceHigh-Energy Particle Collisions Research

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