High Power Laser and Particle Beams, Volume. 35, Issue 5, 056001(2023)
Research progress on compatibility of ferritic/martensitic steel and austenitic stainless steel in static lead-bismuth eutectic environments
[3] Wu Yichan, FDS Team. Prospects of lead-based reactors for fourth-generation nuclear energy systems[J]. Science & Technology Review, 33, 12(2015).
[5] Zhang Jinsuo, Li Ning. Review of the studies on fundamental issues in LBE corrosion[J]. Journal of Nuclear Materials, 373, 351-377(2008).
[8] Ruan Zhangshun, Qin Bo, Fu Xiaogang, . Corrosion behavior of fuel cladding material CN-1515 stainless steel in lead-bismuth eutectic alloy with oxygen control[J]. Atomic Energy Science and Technology, 55, 901-908(2021).
[9] [9] Hu Yadong. Stress crosion behavi of T91 steel in static leadbismuth eutectic with oxygen control[D]. Hefei: University of Science Technology of China, 2018
[10] Serena B, Sebastiano C, Carlo C, et al. Material performance in lead and lead-bismuth alloy[J]. Reference Module in Materials Science and Materials Engineering, 4, 218-241(2012).
[11] [11] Li Mingyang. Study on the crosion behavi of T91 316L steels in liquid LBE[D]. Hefei: Hefei University of Technology, 2014
[13] [13] Schroer, C, Konys J. Physical chemistry of crosion oxygen control in liquid lead leadbismuth eutectic[R]. FZKA 7364, 2007.
[14] Gong Xing, Xiao Jun, Wang Hao, . Corrosion behavior and mechanisms of ferritic/martensitic steels and austenitic stainless steels in liquid lead-bismuth eutectic[J]. Nuclear Science and Engineering, 40, 864-871(2020).
[15] Tian Shujian, Zhang Jianwu. Corrosion behavior of 316L and T91 steels in stagnant lead-bismuth eutectic at 550 ℃[J]. Journal of University of Science and Technology of China, 45, 751-756(2015).
[16] Kurata Y, Futakawa M, Saito S. Corrosion behavior of steels in liquid lead–bismuth with low oxygen concentrations[J]. Journal of Nuclear Materials, 373, 164-178(2008).
[24] Kurata Y. Corrosion behavior of Si-enriched steels for nuclear applications in liquid lead–bismuth[J]. Journal of Nuclear Materials, 437, 401-408(2013).
[25] Kurata Y, Futakawa M, Saito S. Comparison of the corrosion behavior of austenitic and ferritic/martensitic steels exposed to static liquid Pb–Bi at 450 and 550 ℃[J]. Journal of Nuclear Materials, 343, 333-340(2005).
[26] [26] Dong Hong. The compatibility of LBE alloy T91 steel[D]. Shenyang: Shenyang Ligong University, 2013
[29] Johnson A L, Parsons D, Manzerova J, et al. Spectroscopic and microscopic investigation of the corrosion of 316/316L stainless steel by lead–bismuth eutectic (LBE) at elevated temperatures: importance of surface preparation[J]. Journal of Nuclear Materials, 328, 88-96(2004).
[30] Martín-Muñoz F J, Soler-Crespo L, Gómez-Briceño D. Assessment of the influence of surface finishing and weld joints on the corrosion/oxidation behaviour of stainless steels in lead bismuth eutectic[J]. Journal of Nuclear Materials, 416, 80-86(2011).
[31] Ding Xiangbin, Luo Meng, Lu Guangyao, . Effect of different surface treatment on 316L steel welds in the liquid lead-bismuth alloy[J]. Welding & Joining, 21-25(2019).
[33] [33] Bai Peiwen. The preparation crosion resistance in PbBi alloy of SiC films on 1515Ti steel[D]. Hefei: Hefei University of Technology, 2017
[35] Balbaud-Celerier F, Deloffre P, Terlain A, et al. Corrosion of metallic materials in flowing liquid lead-bismuth[J]. Journal de Physique IV, 12, 177-190(2002).
[36] [36] Tian Shujian. Crosion behavi mechanism of T91 1515Ti steels in liquid leadbismuth eutectic under oxygen control at 500 ℃[D]. Hefei: University of Science Technology of China, 2016
[40] Cionea C, Abad M D, Aussat Y, et al. Oxide scale formation on 316L and FeCrAl steels exposed to oxygen controlled static LBE at temperatures up to 800 ℃[J]. Solar Energy Materials and Solar Cells, 144, 235-246(2016).
[43] Van den Bosch J, Sapundjiev D, Almazouzi A. Effects of temperature and strain rate on the mechanical properties of T91 material tested in liquid lead bismuth eutectic[J]. Journal of Nuclear Materials, 356, 237-246(2006).
[44] Fazio C, Benamati G, Martini C, et al. Compatibility tests on steels in molten lead and lead–bismuth[J]. Journal of Nuclear Materials, 296, 243-248(2001).
[47] [47] Liu Jing. Stress crosion behavi of T91 316L steels in liquid leadbismuth eutectic[D]. Hefei: University of Science Technology of China, 2015
[48] [48] OECD, Nuclear Energy Agency. Hbook on leadbismuth eutectic alloy lead properties, materials compatibility, thermalhydraulics technologies[M]. Nuclear Energy Agency, 2015.
[52] Van Den Bosch J, Coen G, Hosemann P, et al. On the LME susceptibility of Si enriched steels[J]. Journal of Nuclear Materials, 429, 105-112(2012).
[57] Dai Yong, Long B, Groeschel F. Slow strain rate tensile tests on T91 in static lead–bismuth eutectic[J]. Journal of Nuclear Materials, 356, 222-228(2006).
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Junjian Wang, Huaxin Li, Hongju Li, Wenjian Zheng, Chuanyang Lu, Yinghe Ma, Sendong Ren, Shiyi Bao, Yanming He, Jianguo Yang. Research progress on compatibility of ferritic/martensitic steel and austenitic stainless steel in static lead-bismuth eutectic environments[J]. High Power Laser and Particle Beams, 2023, 35(5): 056001
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Received: Nov. 27, 2022
Accepted: --
Published Online: May. 6, 2023
The Author Email: Li Huaxin (hxli2019@zjut.edu.cn)