The Brieva-Rook Localization of the Microscopic Nucleon-Nucleus Potential
arXiv:0911.1184 · doi:10.1088/0954-3899/37/8/085011
Abstract
The nonlocality of the microscopic nucleon-nucleus optical potential is commonly localized by the Brieva-Rook approximation. The validity of the localization is tested for the proton+Zr scattering at the incident energies from 65 MeV to 800 MeV. The localization is valid in the wide incident-energy range.
20 pages, 8 figures
References in corpus (4)
- Determination of S17 from 8B breakup by means of the method of continuum-discretized coupled-channels
- A method of implementing Hartree-Fock calculations with zero- and finite-range interactions
- Hartree-Fock-Bogolyubov calculations with Gaussian expansion method
- Analysis of (K^-,K^+) inclusive spectrum with semiclassical distorted wave model
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