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Microstructure Evolution Characteristics and mechanical properties of a novel nitrogenous nickel-based deposited metal from gas metal arc welding to Heat Treatment
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School of Materials Science and Engineering,Shenyang University of Technology

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    Abstract:

    Nitrogenous nickel-based deposited metal was prepared by gas metal arc welding. Subsequently, solid solution treatment as well as solution and aging treatments were carried out to study the evolution of microstructure and tensile properties in different states. The results show that the high temperature tensile strength of the deposited metal exhibits good performance with the addition of W and N. The grain size of the alloy is large and petal-like Laves phase appears at the grain boundaries. After solid solution treatment, the grain size decreased and the Laves phase disappeared. However, the yield strength and elongation of the deposited metal decreased. The grain size of the solid solution and aging treated samples was more uniform. Nanoscale M(C,N) phases precipitated within the crystals and M23C6 phase formed at grain boundaries. The yield strength and ultimate tensile strength were higher than the other samples, but the plasticity was the lowest. The main deformation mechanism is the unit dislocation a/2<110> cutting precipitation phase.

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[Yingdi Wang, Guiqing Zhang, Taisen Yang, Xuewei Liang, Yunhai Su. Microstructure Evolution Characteristics and mechanical properties of a novel nitrogenous nickel-based deposited metal from gas metal arc welding to Heat Treatment[J]. Rare Metal Materials and Engineering,,().]
DOI:10.12442/j. issn.1002-185X.20240744

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History
  • Received:November 18,2024
  • Revised:February 20,2025
  • Adopted:February 21,2025
  • Online: April 03,2025
  • Published: