DocumentCode
38678
Title
Use of CCD to Detect Terrestrial Cosmic Rays at Ground Level: Altitude vs. Underground Experiments, Modeling and Numerical Monte Carlo Simulation
Author
Saoud, T. Saad ; Moindjie, S. ; Autran, J.L. ; Munteanu, Daniela ; Wrobel, F. ; Saigne, F. ; Cocquerez, P. ; Dilillo, L. ; Glorieux, M.
Author_Institution
IM2NP Lab., Aix-Marseille Univ., Marseille, France
Volume
61
Issue
6
fYear
2014
fDate
Dec. 2014
Firstpage
3380
Lastpage
3388
Abstract
In this work, we used a commercial charge-coupled device (CCD) camera to detect and monitor terrestrial cosmic rays at ground level. Multi-site characterization has been performed at sea level (Marseille), underground (Modane Underground Laboratory) and at mountain altitude (Aiguille du Midi-Chamonix Mont-Blanc at +3,780 m of altitude) to separate the atmospheric and alpha particle emitter´s contributions in the CCD response. An additional experiment at avionics altitude during a long-haul flight has been also conducted. Experiment results demonstrate the importance of the alpha contamination in the CCD response at ground level and its sensitivity to charged particles. Experimental data as a function of CCD orientation also suggests an anisotropy of the particle flux for which the device is sensitive. A complete computational modeling of the CCD imager has been conducted, based on a simplified 3D CCD architecture deduced from a reverse engineering study using electron microscopy and physico-chemical analysis. Monte Carlo simulations evidence the major contribution of low energy (below a few MeV) protons and muons in the CCD response. Comparison between experiments and simulation shows a good agreement at ground level, fully validated at avionics altitudes with a much higher particle flux and a different particle cocktail composition.
Keywords
CCD image sensors; Monte Carlo methods; cosmic ray muons; cosmic ray protons; 3D CCD architecture; CCD imager; CCD orientation; alpha contamination; alpha particle emitter; charge-coupled device camera; electron microscopy; long-haul flight; muons; numerical Monte Carlo simulation; particle cocktail composition; particle flux; physico-chemical analysis; protons; terrestrial cosmic rays; Alpha particles; Atmospheric measurements; Atmospheric modeling; Charge coupled devices; Cosmic rays; Mesons; Monte Carlo methods; Neutrons; Protons; Alpha-particle emitters; Charge-Coupled Devices (CCD); Monte Carlo simulation; atmospheric neutrons; avionics measurements; muons; protons; terrestrial cosmic rays; underground test;
fLanguage
English
Journal_Title
Nuclear Science, IEEE Transactions on
Publisher
ieee
ISSN
0018-9499
Type
jour
DOI
10.1109/TNS.2014.2365038
Filename
6954525
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