17
Views
3
CrossRef citations to date
0
Altmetric
Technical Paper

Modeling of High-Precision Neutron Nonelastic Cross Sections

, , , &
Pages 213-220 | Published online: 10 Apr 2017

References

  • J. S. NODVIK, “The Influence of Details of the Potential,” Proc. Int. Conf. Nuclear Optical Model, Tallahassee, Florida, March 16–17, 1959, p. 16, Florida State University Press (1959).
  • M. H. MacGREGOR, W. P. BALL, and R. BOOTH, “Nonelastic Neutron Cross Sections at 14 MeV,” Phys. Rev., 108, 726 (1957).
  • N. N. FLEROV and V. M. TALYZIN, “Cross Section for Inelastic Interactions by 14.5 MeV Neutrons with Various Materials,” Atomnia Energia, 4, 155 (1956) [English Translation: Sov. J. At. Energy, 4, 617 (1956)].
  • F. S. DIETRICH, J. D. ANDERSON, R. W. BAUER, and S. M. GRIMES, “Wick’s Limit and a New Method for Estimating Neutron Reaction Cross Sections,” Phys. Rev. C, 68, 064608 (2003).
  • F. S. DIETRICH, J. D. ANDERSON, R. W. BAUER, and S. M. GRIMES, “A New Method for Estimating Neutron Reaction Cross Sections Based on Wick’s Limit,” Proc. Int. Conf. Nuclear Data for Science and Technology, Santa Fe, New Mexico, September 2004, p. 300. R. C. HAIGHT et al., Eds., AIP Conf. Proc., 769, 1 (2005).
  • S. M. GRIMES, J. D. ANDERSON, R. W. BAUER, and V. A. MADSEN, “Justification of a Simple Ramsauer Model for Neutron Total Cross Sections,” Nucl. Sci. Eng., 130, 340 (1998).
  • R. W. BAUER, J. D. ANDERSON, S. M. GRIMES, D. A. KNAPP, and V. A. MADSEN, “Application of a Simple Ramsauer Model for Neutron Total Cross Sections,” Nucl. Sci. Eng., 130, 348 (1998).
  • A. J. KONING and J. P. DELAROCHE, “Local and Global Nucleon Optical Model from 1 keV to 200 MeV,” Nucl. Phys. A, 713, 231 (2003).
  • R. W. FINLAY, W. P. ABFALTERER, G. FINK, E. MONTEI, T. ADAMI, P. W. LISOWSKI, G. L. MORGAN, and R. C. HAIGHT, “Neutron Total Cross Sections at Intermediate Energies,” Phys. Rev. C, 47, 237 (1993).
  • W. P. ABFALTERER, F. B. BATEMAN. F. S. DIETRICH, R. W. FINLAY, R. C. HAIGHT, and G. L. MORGAN, “Measurement of Neutron Total Cross Sections up to 560 MeV,” Phys. Rev. C, 63, 044608 (2001).
  • R. C. BARRETT and D. F. JACKSON, Nuclear Sizes and Structure, Oxford University Press (1979).
  • V. FRANCO, “Quantitative Aspects of Nucleon-Nuclear Interaction and the Optical Model,” Phys. Rev. B, 140, 1501 (1965).
  • A. B. SMITH, “Neutron Scattering and Models: Iron,” Nucl. Phys. A, 605, 269 (1996).
  • D. SCHMIDT, W. MANNHART, H. KLEIN, and R. NOLTE, “Neutron Scattering on Natural Iron at Incident Energies between 9.4 and 15.2 MeV,” PTB-N-20, Physikalisch Technische Bundesanstalt (1994).
  • N. OLSSON, B. TROSTELL, E. RAMSTROM, B. HOLMQVIST, and F. S. DIETRICH, “Microscopic and Conventional Optical Model Analysis of Neutron Elastic Scattering at 21.6 MeV over a Wide Mass Range,” Nucl. Phys. A, 472, 237 (1987).
  • J. C. FERRER, J. D. CARLSON, and J. RAPAPORT, “Neutron Elastic Scattering at 11 MeV and the Isospin Dependence of the Neutron-Nucleus Optical Potential,” Nucl. Phys. A, 275, 325 (1977).
  • S. MELLEMA, R. W. FINLAY, F. S. DIETRICH, and F. PETROVICH, “Microscopic and Conventional Optical Model Analysis of Fast Neutron Scattering from 54,56Fe,” Phys. Rev. C, 28, 2267 (1983).
  • W. P. BALL, M. H. MacGREGOR, and R. BOOTH, “Neutron Nonelastic Cross Sections from 7 to 14 MeV,” Phys. Rev., 110, 1392 (1958); see also M. H. MacGREGOR, W. P. BALL, and R. BOOTH, “Neutron Nonelastic Cross Sections at 21.0, 25.5, and 29.2 MeV,” Phys. Rev., 111, 1153 (1958).
  • J. D. ANDERSON and S. M. GRIMES, “Nuclear Ramsauer Effect and the Isovector Potential,” Phys. Rev. C, 41, 2904 (1990).
  • F. S. DIETRICH, J. D. ANDERSON, R. W. BAUER, S. M. GRIMES, R. W. FINLAY, W. P. ABFALTERER, F. B. BATEMAN, R. C. HAIGHT, G. L. MORGAN, E. BAUGE, J.-P. DELAROCHE, and P. ROMAIN, “Importance of Isovector Effects in Reproducing Neutron Total Cross Section Differences in the W Isotopes,” Phys. Rev. C, 67, 044606 (2003).
  • F. S. DIETRICH, Personal Communication (2006).
  • F. S. DIETRICH, J. D. ANDERSON, R. W. BAUER, M. GIROD, D. GOGNY, S. M. GRIMES, S. HILAIRE, and D. P. McNABB, “Deviation of Nuclear Radii from a Smooth A Dependence for Neutron Data,” Proc. Int. Conf. Nuclear Data for Science and Technology, Nice, France, April 22–27, 2007 (to be published).

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.