2022•Journal of Physics Conference SeriesOpen access

Improvement of Material Discrimination Using Muon Momenta in MST

Sridhar Tripathy, P. K. Rout, Jaydeep Datta, Nayana Majumdar, Supratik Mukhopadhyay

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Abstract

MST or Muon Scattering Tomography is a major non-destructive technique to discriminate materials by finding deviation in muon tracks which depends on Z and density (ρ) of the medium the muon passes through. The scattering angle also depends on the incoming momentum of muon which is a key to distinguish multiple small deviations through large path-lengths of low-Z material from significant deviations through smaller path lengths of a high-Z target. An analytical function, derived by fitting the muon momentum distribution in a selected range has been used to predict the momentum of individual events. The scattering angles have been normalized by the predicted momenta to improve the material discrimination.

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MST or Muon Scattering Tomography is a major non-destructive technique to discriminate materials by finding deviation in muon tracks which depends on Z and density (ρ) of the medium the muon passes through. The scattering angle also depends on the incoming momentum of muon which is a key to distinguish multiple small deviations through large path-lengths of low-Z material from significant deviations through smaller path lengths of a high-Z target. An analytical function, derived by fitting the muon momentum distribution in a selected range has been used to predict the momentum of individual events. The scattering angles have been normalized by the predicted momenta to improve the material discrimination.

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Available abstract

MST or Muon Scattering Tomography is a major non-destructive technique to discriminate materials by finding deviation in muon tracks which depends on Z and density (ρ) of the medium the muon passes through. The scattering angle also depends on the incoming momentum of muon which is a key to distinguish multiple small deviations through large path-lengths of low-Z material from significant deviations through smaller path lengths of a high-Z target. An analytical function, derived by fitting the muon momentum distribution in a selected range has been used to predict the momentum of individual events. The scattering angles have been normalized by the predicted momenta to improve the material discrimination.

Key concepts: Muon, Momentum (technical analysis), Physics, Scattering, Range (aeronautics), Path length, Mean free path, Nuclear physics

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