Citation: | Lou Lei, Wang Lianjie, Peng Xingjie, Zhao Chen, Zhang Bin, Zhou Bingyan, Zhou Nan, Hu Yuying, Wang Xingbo, Zhao Zifan. Preliminary Study on Conceptual Design of Lead-based Fully Ceramic Microencapsulated Dispersion Fuel Core[J]. Nuclear Power Engineering, 2022, 43(S2): 100-103. doi: 10.13832/j.jnpe.2022.S2.0100 |
[1] |
POWERS J J. Fully ceramic microencapsulated (FCM) replacement fuel for LWRs: ORNL/TM-2013/173[R]. Oak Ridge: Oak Ridge National Laboratory, 2013.
|
[2] |
TERRANI K A, SNEAD L L, GEHIN J C. Microencapsulated fuel technology for commercial light water and advanced reactor application[J]. Journal of Nuclear Materials, 2012, 427(1-3): 209-224. doi: 10.1016/j.jnucmat.2012.05.021
|
[3] |
LI W, CHEN P, LIU Z, et al. Preliminary analysis of ATF concept design by NPIC[C]//Technical Meeting on Accident Tolerant Fuel Concepts for Light Water Reactors. Vienna: IAEA, 2014.
|
[4] |
LIANG C, JI W, A neutronic feasibility study of the AP1000 design loaded with fully ceramic micro-encapsulated fuel[C]//2013 International Conference on Mathematics and Computational Methods Applied to Nuclear Science and Engineering. Sun Valley: American Nuclear Society, 2013.
|
[5] |
DAI X, CAO X R, YU S H, et al. Conceptual core design of an innovative small PWR utilizing fully ceramic microencapsulated fuel[J]. Progress in Nuclear Energy, 2014, 75: 63-71. doi: 10.1016/j.pnucene.2014.04.010
|
[6] |
ZRODNIKOV A V, CHITAIKIN V I, TOSHINSKII G I, et al. Nuclear power plants based on reactor modules with SVBR-75/100[J]. Atomic Energy, 2001, 91(6): 957-966. doi: 10.1023/A:1014862701400
|
[7] |
ZRODNIKOV A V, TOSHINSKY G I, KOMLEV O G, et al. Innovative nuclear technology based on modular multi-purpose lead-bismuth cooled fast reactors[J]. Progress in Nuclear Energy, 2008, 50(2-6): 170-178. doi: 10.1016/j.pnucene.2007.10.025
|
[8] |
ZHAO C, LOU L, PENG X J, et al. Application of the spectral-shift effect in the small lead-based reactor SLBR-50[J]. Frontiers in Energy Research, 2021, 9: 756106. doi: 10.3389/fenrg.2021.756106
|