February 2026

Journal

The Extended Embedded Self-Shielding Method in SCALE 6.3/Polaris

By:
Kim, Kangseog ; Jessee, Matthew A; Holcomb, Andrew M; Wieselquist, William A
Journal Name:
Journal of Nuclear Engineering
Page Number:
13
Volume:
7
Issue Number:
1
Publication Date:
February 2026
View DOI Listing:
https://doi.org/10.3390/jne7010013

Abstract

The SCALE transport lattice code, Polaris, has been previously developed to generate few-group homogenized cross sections for whole-core nodal diffusion simulators in which the embedded self-shielding method (ESSM) is used for resonance self-shielding calculations to process cross sections. Although the ESSM capability has been very successful in light-water reactor analysis, it may require enhancements in computational efficiency; treatment of spatially dependent resonance self-shielding effects; and handling of interrelated resonance effects among fuel, cladding, and control rod materials. Therefore, this study focuses on improving computational efficiency by using a Dancoff-based Wigner–Seitz approximation combined with a material-based resonance categorization, through which a spatially dependent ESSM capability is developed to accurately estimate self-shielded cross sections inside the fuel. Benchmark results show that the new capability significantly enhances computational efficiency and accuracy for spatially dependent local zones within the fuel and through depletion.