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Comparisons of several transport models in their predictions in typical space radiation environments
Authors:ZW Lin  JH Adams Jr  AF Barghouty  SD Randeniya  RK Tripathi  JW Watts  PP Yepes
Institution:1. C-209 Howell Science Complex, Department of Physics, East Carolina University, Greenville, NC 27858, United States;2. NASA Marshall Space Flight Center, Huntsville, AL 35805, United States;3. University of Texas M. D. Anderson Cancer Center, Houston, TX 77030, United States;4. NASA Langley Research Center, Hampton, VA 23681, United States;5. University of Alabama-Huntsville, CSPAR, 320 Sparkman Drive, Huntsville, AL 35805-1012, United States;6. Department of Physics, Rice University, Houston, TX 77005, United States
Abstract:We have used several transport codes to calculate dose and dose equivalent values as well as the particle spectra behind a slab or inside a spherical shell shielding in typical space radiation environments. Two deterministic codes, HZETRN and UPROP, and two Monte Carlo codes, FLUKA and Geant4, are included. A soft solar particle event, a hard solar particle event, and a solar minimum galactic cosmic rays environment are considered; and the shielding material is either aluminum or polyethylene. We find that the dose values and particle spectra from HZETRN are in general rather consistent with Geant4 except for neutrons. The dose equivalent values from HZETRN and Geant4 are not far from each other, but the HZETRN values behind shielding are often lower than the Geant4 values. Results from FLUKA and Geant4 are mostly consistent for considered cases. However, results from the legacy code UPROP are often quite different from the other transport codes, partly due to its non-consideration of neutrons. Comparisons for the spherical shell geometry exhibit the same qualitative features as for the slab geometry. In addition, results from both deterministic and Monte Carlo transport codes show that the dose equivalent inside the spherical shell decreases from the center to the inner surface and this decrease is large for solar particle events; consistent with an earlier study based on deterministic radiation transport results. This study demonstrates both the consistency and inconsistency among these transport models in their typical space radiation predictions; further studies will be required to pinpoint the exact physics modules in these models that cause the differences and thus may be improved.
Keywords:Transport code  Space radiation  Radiation shielding  Solar particle events  Galactic cosmic rays
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