ÚTEFČVUT Ústav technické a experimentální fyziky ČVUT v PrazeInstitute of Experimental and Applied Physics, CTU in Prague

Characterization of the Radiation Field in the ATLAS Experiment With Timepix Detectors

NázevTitle
Characterization of the Radiation Field in the ATLAS Experiment With Timepix DetectorsCharacterization of the Radiation Field in the ATLAS Experiment With Timepix Detectors
Druh výsledkuResult type
Článek v časopiseJournal article
AutořiAuthors
B. Bergmann, T. Billoud, C. Leroy, S. Pospíšil
Klíčová slovaKeywords
proton, TRACK
DOIDOI
10.1109/TNS.2019.2918365
Časopis / citaceJournal / citation
IEEE Transactions on Nuclear Science 66(7), 1861-1869 (2019) · ISSN 0018-9499
RokYear
2019
JazykLanguage
eng
ZáznamyRecords
ProjektProject
Inženýrské aplikace fyziky mikrosvětaEngineering applications of microworld physics
CitovánoCited by
16 (INSPIRE-HEP)
2020: 42021: 42022: 12023: 12024: 32025: 12026: 2
Citace ke staženíDownload citation
TXT · BibTeX

AbstraktAbstract

We present a study of the radiation field at various locations in the ATLAS experiment, using compact detector systems based on pixelated silicon sensors assembled with Timepix readout chips. The hodoscope design of the ATLAS-Timepix (TPX) detectors includes neutron converters in between two sensors, allowing the characterization of both neutron and charged particle fields on a track by track basis. Thermal and fast neutrons are discriminated by segmenting the sensor area with dedicated sensitive materials. Using specific pattern recognition algorithms, clusters from electrons and photons above similar to 10 keV, minimum ionizing particles (MIPs), and highly ionizing particles are classified. A coincidence method using the time-over-threshold mode of the chip is developed to extract stopping power and directional information of energetic charged particles. Thermal neutron fluences are obtained for each ATLAS-TPX unit, illustrating the effect of detector material and shielding in the experimental cavern. Reconstructed trajectories of energetic charged particles point out radiation coming from the interaction point and other hot spots.

We present a study of the radiation field at various locations in the ATLAS experiment, using compact detector systems based on pixelated silicon sensors assembled with Timepix readout chips. The hodoscope design of the ATLAS-Timepix (TPX) detectors includes neutron converters in between two sensors, allowing the characterization of both neutron and charged particle fields on a track by track basis. Thermal and fast neutrons are discriminated by segmenting the sensor area with dedicated sensitive materials. Using specific pattern recognition algorithms, clusters from electrons and photons above similar to 10 keV, minimum ionizing particles (MIPs), and highly ionizing particles are classified. A coincidence method using the time-over-threshold mode of the chip is developed to extract stopping power and directional information of energetic charged particles. Thermal neutron fluences are obtained for each ATLAS-TPX unit, illustrating the effect of detector material and shielding in the experimental cavern. Reconstructed trajectories of energetic charged particles point out radiation coming from the interaction point and other hot spots.

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