- By:
- Montoya, Katherine I; Herbert, Erik G; Nelson, Andrew T; Gerczak, Tyler J
- Page Number:
- 744-753
- Volume:
- 3431
- Book Title:
- TopFuel 2025: Nuclear Reactor Fuel Performance Conference Proceedings
- Publication Date:
- March 12, 2026
- Conference Name:
- TOPFUEL 2025: Nuclear Reactor Fuel Performance Conference
- Conference Location:
- Nashville, Tennessee, United States of America
- Conference Sponsor:
- American Nuclear Society (ANS)
- View DOI Listing:
- https://doi.org/10.13182/TOPFUEL25-48616
Abstract
Tristructural isotropic (TRISO) coated particle fuel was initially developed for high temperature gas cooled reactors (HTGR) and has been proposed for several other advanced reactor concepts. The design of TRISO particles focuses on preventing the release of fission products in normal and off-normal reactor conditions. The particle design features an actinide bearing fuel kernel that is surrounded by three pyrolytic carbon (PyC) layers and a silicon carbide layer (SiC). The mechanical stability of the particle and fission product retention for both metallic and gaseous fission products depend on the SiC layer. Post irradiation examination (PIE) of TRISO fuel from the first two US DOE Advanced Gas Reactor Fuel Development and Qualification Program irradiation campaigns, AGR-1 and AGR-2, had identified a low rate of particles exhibiting cracking in the SiC layer that did not propagate across the SiC layer. While cracking in the SiC is rare for test conditions and particles associated with the AGR program, understanding the stress state and mechanical properties of the SiC and PyC layers related to particle architecture can aid predicting thermomechanical response of TRISO fuel under the prescribed operation envelope and beyond as well as aiding in the development of similar fuel concepts for other advanced reactors. The presented investigation shows the relationship of the mechanical properties and mechanical response (e.g., understanding crack propagation) of the SiC and PyC layers relative to position within the particle. Testing was conducted on the inner and outer PyC layers of TRISO particles to quantify differences in mechanical behavior.