- By:
- Cinbiz, Mahmut N; Wang, Hong ; Garrison, Benton E; Linton, Kory D; Cantonwine, Paul E; Aumand, Matthieu
- Page Number:
- 522-531
- Book Title:
- Proceedings of TopFuel 2025: Nuclear Reactor Fuel Performance Conference
- Publication Date:
- March 12, 2026
- Publisher Location:
- American Nuclear Society, Illinois, United States of America
- Conference Name:
- TopFuel 2025
- Conference Location:
- Nashville, Tennessee, United States of America
- Conference Sponsor:
- ANS
- View DOI Listing:
- https://doi.org/10.13182/TOPFUEL25-48081
Abstract
This study investigates the mechanical behavior of High Flux Isotope Reactor (HFIR) irradiated M5FRAMATOME cladding under simple and complex loading conditions through axial tensile and reversible cyclic bending. Axial tension specimens were pre-machined prior to HFIR irradiation while cyclic bend specimens were inserted as intact tubes. Tests articles were neutron-irradiated to 4 and 16 dpa, and specimens were tested at ORNL's hotcell facilities. The axial tension tests were conducted under constant displacement control, and the reversible cyclic bend tests were performed using ORNL's Cyclic Integrated Reversible-Bending Fatigue Tester (CIRFT) apparatus. Results showed that mechanical response of Cr-coated and uncoated M5FRAMATOME cladding were similar and independent of irradiation dose for axial tension tests, while Cr-coated specimens’ reversible cyclic bend behavior differed from uncoated counterparts. For all tests, irradiation temperature showed a significant impact on the mechanical behavior. Below 280°C, all axial tensile specimens whether coated or not behaved similarly. Above 280°C, YS and UTS showed decrease with increasing irradiation temperature. A similar behavior was also observed in cyclic bend tests as well. The mechanical damage during cyclic bend tests was linked to damage accumulation in unirradiated Cr-coated zircaloy-4 specimens, and the effect of irradiation temperature was related to changing characteristics of defect mobility during high temperature irradiation.