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Lee, Deokjung
Computational Reactor physics & Experiment Lab.
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Resonance Interference Method in Lattice Physics Code STREAM

Author(s)
Choi, SooyoungKhassenov, AzamatLee, Deokjung
Issued Date
2015-05-17
URI
https://scholarworks.unist.ac.kr/handle/201301/35544
Citation
23rd International Conference on Nuclear Engineering: Nuclear Power - Reliable Global Energy, ICONE 2015
Abstract
Newly developed resonance interference model is implemented in the lattice physics code STREAM, and the model shows a significant improvement in computing accurate eigenvalues. Equivalence theory is widely used in production calculations to generate the effective multigroup (MG) cross-sections (XS) for commercial reactors. Although a lot of methods have been developed to enhance the accuracy in
computing effective XSs, the current resonance treatment methods still do not have a clear resonance interference model. The conventional resonance interference model simply adds the absorption XSs of resonance isotopes to the background XS. However, the conventional models show non-negligible errors in computing effective XSs and eigenvalues. In this paper, a resonance interference factor (RIF) library method is proposed. This method interpolates the RIFs in a pre-generated RIF library and corrects the effective XS, rather than solving the time consuming slowing down calculation. The RIF library method is verified for homogeneous and heterogeneous problems The verification results using the proposed method show significant improvements of accuracy in treating the interference effect.
Publisher
23rd International Conference on Nuclear Engineering: Nuclear Power - Reliable Global Energy, ICONE 2015

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