MCNP5 for proton radiography
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AUTOR, Nou, BULL, Jeffrey S., MASHNIK, Stepan, PRAEL, Richard, SIERK, Arnold J., MOKHOV, Nikolai V., GUDIMA, Konstantin K.. MCNP5 for proton radiography. In: Radiation Protection Dosimetry, 2005, vol. 116, pp. 109-112. ISSN 0144-8420. DOI: https://doi.org/10.1093/rpd/nci109
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Radiation Protection Dosimetry
Volumul 116 / 2005 / ISSN 0144-8420 /ISSNe 1742-3406

MCNP5 for proton radiography

DOI:https://doi.org/10.1093/rpd/nci109

Pag. 109-112

Autor Nou, Bull Jeffrey S.1, Mashnik Stepan1, Prael Richard1, Sierk Arnold J.1, Mokhov Nikolai V.2, Gudima Konstantin K.3
 
1 Los Alamos National Laboratory,
2 Fermi National Accelerator Laboratory, Batavia,
3 Institute of Applied Physics, Academy of Sciences of Moldova
 
 
Disponibil în IBN: 20 iunie 2024


Rezumat

The developmental version of MCNP5 has recently been extended to provide for continuous-energy transport of high-energy protons. This enhancement involves the incorporation of several significant new physics models into the code. Multiple Coulomb scattering is treated with an advanced model that takes account of projectile and nuclear target form factors. In the next version, this model will provide a coupled sampling of both angular deflection and collisional energy loss, including straggling. The proton elastic scattering model is also new, based on recent theoretical work. Charged particle transport in the presence of magnetic fields is accomplished either by using transfer maps from the COSY INFINITY code (in void regions) or by using an algorithm adapted from the MARS code (in void regions or in scattering materials). Work is underway to validate and implement the latest versions of the Cascade-Exciton Model and the Los Alamos Quark-Gluon String Model, which will process inelastic nuclear interactions and generate secondary particles. 

Cuvinte-cheie
algorithms, computer simulation, computer-aided design, Linear Energy Transfer, Models, statistical, Monte Carlo method, Protons, Radiation Dosage, radiation protection, Radiographic Image Interpretation, computer-assisted, radiography, Radiometry, scattering, radiation, software, software design, User-Computer Interface