Microstructure and properties of 304 stainless steel coating by local dry underwater laser cladding with filler wire

被引:0
|
作者
Li C. [1 ]
Shao C. [2 ]
Zhu J. [1 ]
Cai Z. [3 ]
Mei L. [2 ]
Jiao X. [1 ]
机构
[1] Beijing Institute of Petrochemical Technology, Beijing
[2] Shanghai Nuclear Engineering Research and Design Institute, Shanghai
[3] Army Academy of Armored Forces, Beijing
关键词
Chemical composition; Electrochemical corrosion; Local dry underwater laser wire-feed cladding; Microstructure; Phase composition;
D O I
10.12073/j.hjxb.20210305004
中图分类号
学科分类号
摘要
In the air and underwater environment, 308L stainless steel was clad on the surface of Austenitic 304 stainless steel with self-developed underwater laser cladding equipment to explore the repair of 304 stainless steel with defects in underwater environment. The microstructure, chemical composition and phase composition of the coating were analyzed by XRD, EDS and optical microscope. The hardness of the coating was tested by microhardness tester. The electrochemical corrosion behavior of the coating was studied by potentiodynamic polarization and AC impedance spectroscopy. The results show that single layer and multi-channel cladding layers were prepared in two environments, and there were no obvious pores, cracks and other defects. The microstructure of the cladding layer is mainly composed of austenite, ferrite and martensite. Because of the different microstructure and grain size in each region, the hardness of the cladding layer presents a stepped distribution. The coatings in both environments show obvious passivation behavior in 3.5% NaCl solution, and the corrosion resistance of the coatings in both environments is similar. The designed underwater laser cladding with filler wire process meets the requirements of practical engineering for efficient preparation, forming quality and corrosion resistance of cladding layer, and can be used for surface protection and repair of 304 stainless steel in underwater environment. © 2021, Editorial Board of Transactions of the China Welding Institution, Magazine Agency Welding. All right reserved.
引用
收藏
页码:67 / 74
页数:7
相关论文
共 15 条
  • [1] Jiao Xiangdong, Zhu Jialei, Application status and prospect of underwater welding automation technology in offshore engineering, MW Metal Forming, 2, pp. 24-26, (2013)
  • [2] Takehisa H, Masataka T, Yoshimi T, Et al., Development of underwater laser cladding and underwater laser seal welding techniques for reactor componentsl, Journal of Power and Energy Systems, 3, 1, pp. 51-59, (2009)
  • [3] Feng Jian, Hou Guoting, Liu Xianfu, Et al., Experimental research on explosive welding process of SA533GrBCL2-304L clad metal plate for nuclear power equipment, Pressure Vessel Technology, 36, 11, (2019)
  • [4] Zeng Qunfeng, Xu Yating, Lin Naiming, Corrosion and wear behavior of 304 stainless steel in artificial seawater, Surface Technology, 49, 1, pp. 194-202, (2020)
  • [5] Fu Yunlong, Guo Ning, Cheng Qi, Et al., In-situ formation of laser-cladded layer on Ti-6Al-4V titanium alloy in underwater environment, Optics and Laser Technology, 131, pp. 1-10, (2020)
  • [6] Feng Xiangru, Cui Xiufang, Zheng Wei, Et al., Effect of the protective materials and water on the repairing quality of nickel aluminum bronze during underwater wet laser repairing, Optics and Laser Technology, 114, pp. 140-145, (2019)
  • [7] Wen Xin, Jin Guo, Cui Xiufang, Et al., Underwater wet laser cladding on 316L stainless steel: A protective material assisted method, Optics and Laser Technology, 111, pp. 814-824, (2020)
  • [8] Fu Yunlong, Guo Ning, Cheng Qi, Et al., Investigation on in-situ laser cladding coating of the 304 stainless steel in water environment, Journal of Materials Processing Technology, 289, pp. 1-10, (2021)
  • [9] Fu Yunlong, Guo Ning, Cheng Qi, Et al., Underwater laser welding for 304 stainless steel with filler wire, Journal of Materials Research and Technology, 9, 6, pp. 15648-15661, (2020)
  • [10] Fu Yunlong, Guo Ning, Wang Guanghui, Et al., Underwater additive manufacturing of Ti-6Al-4V alloy by laser metal deposition: Formability, gran growth and microstructure evolution, Materials and Design, 197, pp. 1-10, (2021)