Please wait a minute...
材料导报  2022, Vol. 36 Issue (23): 21090168-7    https://doi.org/10.11896/cldb.21090168
  金属与金属基复合材料 |
铅冷快堆结构材料耐蚀涂层技术研究概述
梁娜1,*, 姚存峰2, 龙斌1, 付晓刚1
1 中国原子能科学研究院,北京 102413
2 近代物理研究所,兰州 730000
Overview of Corrosion-resistant Coating Technology for Lead-cooled Fast Reactor Structure Materials
LIANG Na1,*, YAO Cunfeng2, LONG Bin1, FU Xiaogang1
1 China Institute of Atomic Energy, Beijing 102413, China
2 Institute of Modern Physics, Lanzhou 730000, China
下载:  全 文 ( PDF ) ( 8838KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 铅冷快堆是采用液态铅或铅铋合金冷却的快中子反应堆。作为第四代反应堆六种主要堆型之一,铅冷堆具有高负荷跟踪、高固有安全性、高功率密度和长换料周期等特点,因此铅冷快堆很好地满足了第四代反应堆安全性、经济性、持续性和核不扩散的目标要求。但铅或铅铋合金对结构材料具有很强的腐蚀性,必须采用复杂的氧控技术或优良的耐蚀材料才能保证反应堆长期安全运行。国内外采用了硅增强耐热钢(如俄罗斯燃料包壳用EP823(16Cr12MoWSiVNbMn)、蒸汽发生器用EP302M(10Cr15Ni9Si3Nb))、铝增强铁马钢和涂层制备技术来解决液态铅/铅铋对结构材料的腐蚀问题。本文主要总结了铅冷快堆结构材料典型耐蚀涂层技术的研究现状,并对耐蚀涂层的发展前景进行了展望。
服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
梁娜
姚存峰
龙斌
付晓刚
关键词:  铅铋冷却  结构材料  氧化  耐蚀涂层    
Abstract: Lead-cooled fast reactor is a fast neutron reactor cooled using liquid lead or lead-bismuth alloy. As one of the six main reactors of fourth-gene-ration, lead cooling reactor has the characters of high load tracking, high inherent safety, high power density and long feeding cycle. It meets the requirements of safety, economy, sustainability and nuclear nonproliferation of the fourth-generation reactors. However, lead or lead bismuth alloy are corrosive media for structural material, so complex oxygen control technology or excellent corrosion-resistant materials must be used to ensure the long-term safe operation of the reactor. At present, silicon-reinforced heat-resistant steel, for example Russian cladding materials of EP823 (16Cr12MoWSiVNbMn), steam generator materials of EP302M(10Cr15Ni9Si3Nb), aluminum reinforced ferrite martenite steel and coating preparation technology are used to solve the corrosion problem of liquid lead / lead / bismuth on structural materials. The paper mainly summarizes the research status of typical corrosion-resistant coating technology, and describes the coating prospects in the future.
Key words:  lead-bismuth cooling    structure material    oxidation    corrosion-resistant coating
发布日期:  2022-12-09
ZTFLH:  TB37  
通讯作者:  *15801268865@163.com   
作者简介:  梁娜,2011年7月、2015年7月分别毕业于北京工业大学获得工学学士学位和硕士学位。现工作于中国原子能科学研究院。目前主要研究领域为反应堆材料方向。发表论文2篇。
引用本文:    
梁娜, 姚存峰, 龙斌, 付晓刚. 铅冷快堆结构材料耐蚀涂层技术研究概述[J]. 材料导报, 2022, 36(23): 21090168-7.
LIANG Na, YAO Cunfeng, LONG Bin, FU Xiaogang. Overview of Corrosion-resistant Coating Technology for Lead-cooled Fast Reactor Structure Materials. Materials Reports, 2022, 36(23): 21090168-7.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.21090168  或          http://www.mater-rep.com/CN/Y2022/V36/I23/21090168
1 Xiao H C. Nuclear Science and Engineering, 2015, 35(3), 395(in Chinese).
肖宏才. 核科学与工程, 2015, 35(3), 395.
2 Han J S, Liu B, Li W Q. Nuclear Science and Technology, 2018, 6(3), 87(in Chinese).
韩金盛,刘宾,李文强,等. 核科学与技术,2018,6(3),87.
3 Weisenburger A, Jianu A, An W, et al. In: Conference Record of the IWSMT-10. Beijing, 2010, pp. 3.
4 Martín-Muñoz. Journal of Nuclear Materials, 2004, 335, 194.
5 Bai P W. The preparation and corrosion resistance in Pb-Bi alloy of SiC films on 15-15Ti steel. Master's Thesis, Hefei University of Technology, China, 2017 (in Chinese).
柏佩文. 15-15Ti钢上SiC薄膜的制备及其耐铅铋合金腐蚀性能的研究. 硕士学位论文,合肥工业大学, 2017.
6 Long B, Tong Z, Groschel F, et al. Journal of Nuclear Materials, 2008, 377, 219.
7 Gorynin V,Karzov G P, Markov V G, et al. Metal Science and Heat Treatment, 1999, 41, 384.
8 Li N. Nuclear Materials, 2002, 300, 73.
9 Chang H L. Study on the experimental device for Lead-bismuth eutectic alloy with oxygen control. Ph.D. Thesis, University of Chinese Academy of Sciences, China, 2018(in Chinese).
常海龙. 控氧液态铅铋合金实验装置研究. 博士学位论文,中国科学院大学, 2018.
10 Gorynin, V.Proceedings of the Conference Heavy Liquid Metals Coolants in Nuclear Technologies (HCLM-98), 1998(1), 120.
11 Yuji Kurata, Shigeru Saito. In:Actinide and fission produce partitioning and transmutation, Japan, 2010, pp. 9.
12 Lin Z W, Li H Q, Zhang J. Transactions of Materials and Heat Treatment, 2017, 38(11), 114(in Chinese).
林志伟, 李合琴,张静. 材料热处理学报, 2017, 38(11),114.
13 Ronald G, Ballinger R. The development and production of a functionally graded composite for Pb-Bi service. Final Report, 2011, pp.38.
14 严伟,石全强,单以银.中国专利, CN105386051 A, 2016.
15 石全强,严伟,单以银.中国专利, CN109666905 A, 2019.
16 García Ferré F,Mairov A, Iadicicco D, et al. Corrosion Science, 2017, 124, 80.
17 Enrico Miorin, Francesco Montagner, Valentina Zin.Surface and Coatings Technology, 2019, 377,124890.
18 Heinzel A, Müller G, Weisenburger A. Journal of Nuclear Materials, 2009, 392, 255.
19 Utili M, Agostini M, Coccoluto G, Lorenzinia E.Nuclear Engineering and Design, 2011, 241, 1295.
20 Abu Khalid Rivai, Minoru Takahashi. Progress in Nuclear Energy, 2008, 50, 560.
21 Chaia N. Standard specification for Aluminum diffusion coating applied by pack cementation process. American Society of Testing Materials Press, America, 2003.
22 Deloffre P, Balbaud-Célérier F, Terlain A. Journal of Nuclear Materials, 2004, 335, 180.
23 Deloffre P, Herbert F, Delisle C, et al. Rapport Technique SCCME, 2003, 12, 584.
24 马胜强,万德才,薛德祯. 中国专利,CN111020552 A,2020.
25 Fazio C, Ricapito I, Scaddozo G, et al.Journal of Nuclear Materials, 2003, 318, 325.
26 Lei M, Dong W W, Fang X D.Nuclear Science and Engineering, 2018, 38(3), 498(in Chinese).
雷曼,董伟伟,方晓东. 核科学与工程,2018, 38 (3), 498.
27 Engelkoa V, Muellerd G, Rusanov A.Journal of Nuclear Materials,2011, 415, 270.
28 Kurata Y, Futakawa M, Kikuchi K, et al. Journal of Nuclear Materials, 2002, 301(1), 28.
29 Jiang Y L, Qiu C J, Liu Z.China Surface Engineering, 2015, 28(2), 84(in Chinese).
蒋艳林,邱长军,刘赞. 中国表面工程,2015, 28(2), 84.
30 Xia Y, Qiu C J, Nong Y. Equipment Manufacturing Technology, 2015(12), 6(in Chinese).
夏琰,邱长军,农毅. 装备制造技术,2015(12),6.
31 Zhang M L, Zheng W Q, Qiu C J.Heat Treatment of Metals, 2015, 40(3), 19(in Chinese).
张曼莉,郑文权,邱长军.金属热处理,2015, 40(3),19.
32 Zhang W H,Wang Z B, Lu K. Journal of Nuclear Materials,2018,38(3), 151.
33 Smith C F, Cinotti L. Lead-cooled fast reactor, Handbook of Generation IV Nuclear Reactors, 2016, pp. 119.
34 Kurata Y, Futakawa M. Journal of Nuclear Materials, 2004, 325, 217.
35 周强国,严伟,王威.中国专利,CN103898411 A,2014.
36 周强国,严伟,王威.中国专利, CN103898411 B,2016.
37 单以银,严伟,王志光. 中国专利,CN104032232 A,2014.
38 Barbier F, Rusanov A.Journal of Nuclear Materials, 2001, 296, 231.
39 Ballinger R G. In:The development and production of a functionally graded composite for Pb-Bi service, Final Report, Cambridge, 2011, pp.19.
[1] 陈丹, 宋琛, 杜柯, 郭宇, 刘志义, 刘太楷, 刘敏. 沉积温度对等离子喷涂金属支撑型固体氧化物燃料电池结构及电化学性能的影响[J]. 材料导报, 2022, 36(Z1): 22030119-5.
[2] 林伯, 句子涵, 胡定华, 李强. 基于泡沫铜骨架高导热复合相变储热材料的热性能研究[J]. 材料导报, 2022, 36(Z1): 21110168-5.
[3] 吴学志, 尹邦跃. 特种反应堆用亚化学计量UO2-x燃料O/U比调控与机理研究[J]. 材料导报, 2022, 36(Z1): 21110113-4.
[4] 廖家蔚, 刘红宇, 谢凯欣, 沈慧玲, 刘佳乐, 郑兴农. 四氧化三铁磁性药物载体的研究进展[J]. 材料导报, 2022, 36(Z1): 22040052-7.
[5] 杨惠舒, 李乐, 刘馨谣, 汤凯璇, 乔利. 介孔二氧化硅纳米颗粒作为药物载体的研究现状[J]. 材料导报, 2022, 36(Z1): 21110245-6.
[6] 赵颖平, 陶平, 李文华, 闵秀博, 余忆玄, 孙天军. 载体改性提高船舶尾气锰铬催化剂的脱硝性能[J]. 材料导报, 2022, 36(Z1): 21080248-6.
[7] 刘利, 诸力维, 彭喜林, 周洋, 张楷彬, 孙浩荻, 李晓林. 污水中非正磷酸盐处理技术研究进展[J]. 材料导报, 2022, 36(Z1): 22050093-5.
[8] 简燕, 杨文静, 杨磊, 宋绍意, 倪婕, 何银芳. 纳米多孔硅的多片制备及其性能表征[J]. 材料导报, 2022, 36(Z1): 22010200-6.
[9] 帅树乙, 李婧, 何婷, 陈琴, 陈璐, 黎阳. 光催化氧化铝泡沫陶瓷的制备及性能[J]. 材料导报, 2022, 36(Z1): 21060249-5.
[10] 王伟, 郭鸽鸽, 丁士杰, 程鹏, 高原, 王快社. 钛合金表面抗氧化玻璃涂层研究进展[J]. 材料导报, 2022, 36(Z1): 21110265-8.
[11] 李吉泰, 展悦, 冯明珠, 崔永岩. 超亲水-空气疏油水下超疏油不锈钢网的制备及性能[J]. 材料导报, 2022, 36(Z1): 22010079-5.
[12] 陈小丽, 谭敏, 罗文东. 温度对铝锂合金阳极氧化膜结构及耐蚀性的影响[J]. 材料导报, 2022, 36(Z1): 21120067-5.
[13] 陈小丽. 有机酸对新型铝锂合金阳极氧化膜结构及耐蚀性的影响[J]. 材料导报, 2022, 36(Z1): 22010030-5.
[14] 全琪炜, 刘向兵, 徐超亮, 张晏玮, 李远飞, 钱王洁, 贾文清, 吴奕初, 赵文增. 辐照后锆合金腐蚀与第二相非晶化研究概况[J]. 材料导报, 2022, 36(Z1): 21010255-6.
[15] 裴星飞, 王立华, 陈艳辉. 纳米金属材料原位氧化电子显微学研究进展[J]. 材料导报, 2022, 36(Z1): 22010202-10.
[1] Lanyan LIU,Jun SONG,Bowen CHENG,Wenchi XUE,Yunbo ZHENG. Research Progress in Preparation of Lignin-based Carbon Fiber[J]. Materials Reports, 2018, 32(3): 405 -411 .
[2] Haoqi HU,Cheng XU,Lijing YANG,Henghua ZHANG,Zhenlun SONG. Recent Advances in the Research of High-strength and High-conductivity CuCrZr Alloy[J]. Materials Reports, 2018, 32(3): 453 -460 .
[3] Yanchun ZHAO,Congyu XU,Xiaopeng YUAN,Jing HE,Shengzhong KOU,Chunyan LI,Zizhou YUAN. Research Status of Plasticity and Toughness of Bulk Metallic Glass[J]. Materials Reports, 2018, 32(3): 467 -472 .
[4] Xinxing ZHOU,Shaopeng WU,Xiao ZHANG,Quantao LIU,Song XU,Shuai WANG. Molecular-scale Design of Asphalt Materials[J]. Materials Reports, 2018, 32(3): 483 -495 .
[5] Yongtao TAN, Lingbin KONG, Long KANG, Fen RAN. Construction of Nano-Au@PANI Yolk-shell Hollow Structure Electrode Material and Its Electrochemical Performance[J]. Materials Reports, 2018, 32(1): 47 -50 .
[6] Ping ZHU,Guanghui DENG,Xudong SHAO. Review on Dispersion Methods of Carbon Nanotubes in Cement-based Composites[J]. Materials Reports, 2018, 32(1): 149 -158 .
[7] Fangyuan DONG,Shansuo ZHENG,Mingchen SONG,Yixin ZHANG,Jie ZHENG,Qing QIN. Research Progress of High Performance ConcreteⅠ:Raw Materials and Mix Proportion Design Method[J]. Materials Reports, 2018, 32(1): 159 -166 .
[8] Guiqin HOU,Yunkai LI,Xiaoyan WANG. Research Progress of Zinc Ferrite as Photocatalyst[J]. Materials Reports, 2018, 32(1): 51 -57 .
[9] Jianxiang DING,Zhengming SUN,Peigen ZHANG,Wubian TIAN,Yamei ZHANG. Current Research Status and Outlook of Ag-based Contact Materials[J]. Materials Reports, 2018, 32(1): 58 -66 .
[10] Jing WANG,Hongke LIU,Pingsheng LIU,Li LI. Advances in Hydrogel Nanocomposites with High Mechanical Strength[J]. Materials Reports, 2018, 32(1): 67 -75 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed