Overview of Research on Corrosion Properties of Additively Manufactured Products in the Nuclear Field

被引:0
作者
Zhang, Yue [1 ]
Lan, Yang [1 ]
Wang, Chengyu [1 ]
Yang, Sha [1 ]
机构
[1] Information Center of Science and Technology, Nuclear Power Institute of China, Chengdu
来源
Hedongli Gongcheng/Nuclear Power Engineering | 2024年 / 45卷
关键词
Additive manufacturing; Corrosion properties; Nuclear components; Nuclear materials; Preparation process;
D O I
10.13832/j.jnpe.2024.S1.0208
中图分类号
学科分类号
摘要
The corrosion resistance of additively manufactured products in the nuclear field is related to the service life and operation safety of the reactor system, so the corrosion resistance is very important. In this paper, the basic concepts of research on corrosion properties of additively manufactured products in nuclear field are summarized, and the research and development status of ex-core corrosion properties of additively manufactured products is summarized. Based on the comprehensive analysis of the types of additive manufacturing products in the nuclear field and various additive manufacturing processes such as laser powder bed fusion, directional energy deposition and laser engineered net shaping, the characteristics of the corrosion properties of additive manufacturing products are discussed. It is concluded that the corrosion resistance of additively manufactured products is different due to different manufacturing processes, material reprocessing and corrosion conditions, such as doping a small amount of hafnium, hot isostatic pressing and solution annealing, which can improve the corrosion resistance of additively manufactured products in the nuclear field. Through comprehensive demonstration and analysis, it provides ideas and methods for understanding, deepening and expanding the basic research, technical means and application of corrosion properties of additively manufactured products in the nuclear field. © 2024 Atomic Energy Press. All rights reserved.
引用
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页码:208 / 214
页数:6
相关论文
共 20 条
[1]  
44, 4
[2]  
LODHI M J K, DEEN K M, HAIDER W., Corrosion behavior of additively manufactured 316L stainless steel in acidic media, Materialia, 2, pp. 111-121, (2018)
[3]  
LI M M, CHEN W Y, ZHANG X, Et al., Location-dependent mechanical property evaluation on additively manufacture materials: AC02-06CH11357, (2021)
[4]  
LOU X Y, SONG M, EMIGH P W, Et al., On the stress corrosion crack growth behaviour in high temperature water of 316L stainless steel made by laser powder bed fusion additive manufacturing, Corrosion Science, 128, pp. 140-153, (2017)
[5]  
MCMURTREY M, SUN C, RUPP R E, Et al., Investigation of the irradiation effects in additively manufactured 316L steel resulting in decreased irradiation assisted stress corrosion cracking susceptibility, Journal of Nuclear Materials, 545, (2021)
[6]  
KAZEMIPOUR M, MOHAMMADI M, MFOUMOU E, Et al., Microstructure and corrosion characteristics of selective laser-melted 316L stainless steel: the impact of process-induced porosities, JOM, 71, 9, pp. 3230-3240, (2019)
[7]  
SURYAWANSHI J, BASKARAN T, PRAKASH O, Et al., On the corrosion resistance of some selective laser melted alloys, Materialia, 3, pp. 153-161, (2018)
[8]  
ZIETALA M, DUREJKO T, POLANSKI M, Et al., The microstructure, mechanical properties and corrosion resistance of 316 L stainless steel fabricated using laser engineered net shaping, Materials Science and Engineering: A, 677, pp. 1-10, (2016)
[9]  
STOUDT M R, CAMPBELL C E, RICKER R E., Examining the relationship between post-build microstructure and the corrosion resistance of additively manufactured 17-4PH stainless steel, Materialia, 22, (2022)
[10]  
MELIA M A, NGUYEN H D A, RODELAS J M, Et al., Corrosion properties of 304L stainless steel made by directed energy deposition additive manufacturing, Corrosion Science, 152, pp. 20-30, (2019)