Development of a general framework of resonance self-shielding treatment for broad-spectrum reactor lattice physics calculation

Jinchao Zhang, Qian Zhang, Hang Zou, Jialei Yu, Wei Cao, Shifu Wu, Shuai Qin, Qiang Zhao, Erez Gilad

Research output: Contribution to journalArticlepeer-review

Abstract

Some core designs integrate high-enriched fuel and moderator materials to enhance neutron utilization. This combination results in a broad spectrum within the system, posing challenges in resonance calculation. This paper introduces a general framework to realize resonance self-shielding treatment in broad-spectrum fuel lattice problems. The framework consists of three components. First, a new energy group structure is devised to support resonance calculation in the entire energy range and capture spectral transition and thermalization effects during eigenvalue calculation. Second, the subgroup method based on narrow approximation is selected as a universal method to perform resonance calculation. Finally, transport equations for each fissionable region are solved for neutron flux to collapse the fission spectrum. The proposed method is verified against fast, intermediate, and thermal spectrum pin cell problems and an assembly problem featuring a fast-thermal coupled spectrum. Numerical results affirm the accuracy of the proposed method in handling these scenarios, with eigenvalue errors below 154 pcm for pin cell problems and 106 pcm for the assembly problem. The verification results revealed that the proposed method enables accurate resonance self-shielding treatment for broad-spectrum problems.

Original languageEnglish
Pages (from-to)4335-4354
Number of pages20
JournalNuclear Engineering and Technology
Volume56
Issue number10
DOIs
StatePublished - 1 Oct 2024

Keywords

  • Broad-spectrum
  • Fission spectrum
  • Group structure
  • Subgroup method

ASJC Scopus subject areas

  • Nuclear Energy and Engineering

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