The response of accident tolerant fuel cladding to LOCA burst testing: A comparative study of leading concepts

被引:23
作者
Kane, K. [1 ]
Bell, S. [2 ,3 ]
Capps, N. [2 ]
Garrison, B. [2 ]
Shapovalov, K. [4 ]
Jacobsen, G. [4 ]
Deck, C. [4 ]
Graening, T. [2 ]
Koyanagi, T. [2 ]
Massey, C. [2 ]
机构
[1] Johns Hopkins Univ, Oak Ridge Natl Lab, Appl Phys Lab, Laurel, MD 20723 USA
[2] Oak Ridge Natl Lab, Oak Ridge, TN USA
[3] Univ Tennessee Knoxville, Knoxville, TN USA
[4] Gen Atom, San Diego, CA USA
关键词
LOCA; Steam oxidation; Burst testing; Accident tolerant fuel cladding; Ceramic matrix; Composite; OXIDATION; COMPOSITES; DESIGN; STEAM;
D O I
10.1016/j.jnucmat.2022.154152
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Accident tolerant fuel claddings seek to improve safety margins during loss-of-coolant accident (LOCA) scenarios by reducing cladding steam oxidation rates, hydrogen production, delaying or mitigating cladding burst, and reducing cladding deformation. After rapid and extensive progress in recent years, Cr coated Zr-based alloys, ferritic FeCrAl, and SiC/SiC ceramic matrix composites (CMCs) have emerged as the most promising cladding concepts, but there are few studies comparing the accident tolerance of all three concepts simultaneously. In this study, LOCA burst testing has been conducted on Cr high im-pulse power magnetron sputtered Zry-4 (Cr/Zry-4), C26M (FeCrAl), and SiC/SiC SiGA (CMC). Experimental observations indicate Cr/Zry-4 burst at higher temperatures than Zry-4 however the effectiveness of the coating on mitigating ZrO2 formation via Cr2O3 formation depended on physical proximity to the burst opening. No dramatic improvement in diametrical strain nor opening geometry was observed. C26M burst at higher temperatures than Zry-4 at lower pressures, exhibiting small amounts of strain and smaller openings, and formed slow-growing Al2O3 regardless of location. The CMCs did not burst or show any macroscopic signs of deformation, all the way up to an internal cladding pressure of 15.2 MPa. High tem-perature expanding Nb plug testing indicated that CMC room temperature strength may persist up to 1650 degrees C, with an approximately 40% loss of strength at 1900 degrees C. CMC steam oxidation was also compared to reference chemically vapor deposited SiC up to 1700 degrees C, and CMCs were found to oxidize at slightly ac-celerated rates that were still orders of magnitude lower than bare Zry-4. Projected H 2 generation during LOCA burst testing showed that when accounting for cladding burst exposing inner diameters to steam, Cr coated Zry-4 reduced H 2 generation by a factor of two compared with bare Zry-4, while both C26M and SiC/SiC reduced H 2 generation by orders of magnitude relative to bare Zry-4.(c) 2022 Elsevier B.V. All rights reserved.
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页数:15
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