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  • 1.
    Åström, E.
    et al.
    LKAB R&D, Luleå.
    Bonomi, Germano
    Department of Mechanical and Industrial Engineering, University of Brescia.
    Calliari, Irene
    Department of Industrial Engineering, University of Padova.
    Calvini, Piero
    Department of Physics, University of Genova and Sezione INFN di Genova.
    Checchia, Paolo
    INFN Sezione di Padova.
    Donzella, Antonietta
    Department of Mechanical and Industrial Engineering, University of Brescia.
    Faraci, E.
    Centro Sviluppo Materiali SPA, Rome.
    Forsberg, Fredrik
    Luleå University of Technology, Department of Engineering Sciences and Mathematics, Fluid and Experimental Mechanics.
    Gonella, F.
    INFN Sezione di Padova.
    Hu, X.
    Swerea MEFOS AB, Luleå.
    Klinger, Joel A.
    INFN Sezione di Padova.
    Sundqvist Ökvist, Lena
    Swerea MEFOS AB, Luleå.
    Pagano, Davide
    Department of Mechanical and Industrial Engineering, University of Brescia.
    Rigoni, Andrea
    Department of Physics and Astronomy, University of Padova.
    Ramous, Emilio
    Department of Industrial Engineering, University of Padova.
    Urbani, M.
    Department of Physics and Astronomy, University of Padova.
    Vanini, Sara
    Department of Physics and Astronomy, University of Padova.
    Zenoni, Aldo
    Department of Mechanical and Industrial Engineering, University of Brescia.
    Zumerle, Gianni
    Department of Physics and Astronomy, University of Padova.
    Precision measurements of linear scattering density using muon tomography2016In: Journal of Instrumentation, ISSN 1748-0221, E-ISSN 1748-0221, Vol. 11, no P7010Article in journal (Refereed)
    Abstract [en]

    We demonstrate that muon tomography can be used to precisely measure the properties of various materials. The materials which have been considered have been extracted from an experimental blast furnace, including carbon (coke) and iron oxides, for which measurements of the linear scattering density relative to the mass density have been performed with an absolute precision of 10%. We report the procedures that are used in order to obtain such precision, and a discussion is presented to address the expected performance of the technique when applied to heavier materials. The results we obtain do not depend on the specific type of material considered and therefore they can be extended to any application

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