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Forming, Microstructure and Properties of 10CrNi3MoV High-Strength Steel by Underwater Laser Melting Deposition
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1.State Key Laboratory of Metallic Materials for Marine Equipment and Applications, Anshan 114009, China;2.Ansteel Group Iron and Steel Research Institute, Anshan 114009, China;3.State Key Laboratory of Precision Welding & Joining of Materials and Structures, Harbin Institute of Technology, Harbin 150001, China;4.Shandong Provincial Key Laboratory of Special Welding Technology, Harbin Institute of Technology (Weihai), Weihai 264209, China;5.Harbin Institute of Technology, CGN-HIT Advanced Nuclear and New Energy Research Institute, Harbin 150001, China

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TG456.5

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    Abstract:

    China has independently developed 10CrNi3MoV high-strength steel, which has become a crucial structural material for manufacturing submarine pressure hulls due to its high strength, excellent toughness, superior explosion resistance, and outstanding corrosion resistance. In this study, the response surface method was used to investigate the effects of laser power, scanning speed, and wire feeding speed on the dilution rate and deposition angle of the underwater single-pass deposition layer. Then the optimized underwater single-pass deposition process parameters were obtained. Based on this, the influence of the water environment on the formation, microstructure, and microhardness of the single-pass deposition layer was investigated. Compared with that in air, the faster cooling rate in the underwater laser melting deposition process leads to a larger deposition angle and a slower dilution rate in the underwater deposition layer. Additionally, the microstructure of the underwater deposition layer is finer, which results in a higher microhardness.

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[Zhang Zhiqiang, Wang Jiaji, Hu Fengya, Guo Ning, Wu Di, Cheng Qi, Fu Yunlong. Forming, Microstructure and Properties of 10CrNi3MoV High-Strength Steel by Underwater Laser Melting Deposition[J]. Rare Metal Materials and Engineering,2026,55(3):693~701.]
DOI:10.12442/j. issn.1002-185X.20250079

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History
  • Received:February 18,2025
  • Revised:June 13,2025
  • Adopted:June 17,2025
  • Online: January 26,2026
  • Published: January 09,2026