Published January 2018 | Version v1
Journal article

Radially and azimuthally dependent resonance self-shielding treatment for general multi-region geometry based on a unified theory

  • 1. Mitsubishi Heavy Industries, Ltd., Nuclear Energy System Division, Kobe, Hyogo (Japan)
  • 2. Nagoya University, Department of Materials, Physics and Energy Engineering, Nagoya, Aichi (Japan)

Description

A unified resonance self-shielding method, which can treat general sub-divided fuel regions, is developed for lattice physics calculations in reactor physics field. In a past study, a hybrid resonance treatment has been developed by theoretically integrating equivalence theory and ultra-fine-group slowing-down calculation. It can be applied to a wide range of neutron spectrum conditions including low moderator density ranges in severe accident states, as long as each fuel region is not sub-divided. In order to extend the method for radially and azimuthally sub-divided multi-region geometry, a new resonance treatment is established by incorporating the essence of sub-group method. The present method is composed of two-step flux calculation, i.e. 'coarse geometry + fine energy' (first step) and 'fine geometry + coarse energy' (second step) calculations. The first step corresponds to a hybrid model of the equivalence theory and the ultra-fine-group calculation, and the second step corresponds to the sub-group method. From the verification results, effective cross-sections by the new method show good agreement with the continuous energy Monte-Carlo results for various multi-region geometries including non-uniform fuel compositions and temperature distributions. The present method can accurately generate effective cross-sections with short computation time in general lattice physics calculations. (author)

Availability note (English)

Available from http://dx.doi.org/10.1080/00223131.2017.1384704

Additional details

Publishing Information

Journal Title
Journal of Nuclear Science and Technology (Tokyo) (Online)
Journal Volume
55
Journal Issue
1
Journal Page Range
p. 41-65
ISSN
1881-1248

Optional Information

Notes
24 refs., 22 figs., 9 tabs.