• 教授
  • 博士生导师
  • 硕士生导师
  • 电子邮箱:
  • 入职时间:2017-12-14
  • 学历:博士研究生毕业
  • 性别:
  • 学位:博士
  • 在职信息:在职
  • 毕业院校:巴黎高等矿业学院
  • 所属院系:机械工程学院
  • 学科:机械工程
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23级博士生焦耿豪关于电弧熔丝增材制造因瓦合金的论文发表在J Mater Process Technol上!
  • 发布时间:2023-04-18
  • 文章标题:23级博士生焦耿豪关于电弧熔丝增材制造因瓦合金的论文发表在J Mater Process Technol上!
  • 内容:

    The origin of low thermal expansion coefficient and enhanced tensile properties of Invar alloy fabricated by Directed Energy Deposition

     

    https://doi.org/10.1016/j.jmatprotec.2023.117994

     

    Abstract:

    Invar alloy has a wide range of applications in different industrial sectors because of its low coefficient of thermal expansion (CTE) below the Curie temperature. Directed Energy Deposition (DED) offers tremendous advantages in fabricating large-size Invar alloy components, but little is known about the relationship between its intrinsic microstructure and properties. This research is designed to explore the relationships between microstructures, mechanical properties, and the CTE of Invar alloy fabricated by wire-arc additive manufacturing (WAAM). The microstructures of the as-deposited (AD) and heat-treated (HT) samples were characterized by columnar γ grains decorated by the primary phase and dispersoids. This results in anisotropic mechanical properties and CTE. The precipitated phases were identified as (Nb, Ti)C (0.5-1μm) and NbC (30-500 nm). The presence of the precipitated phase with area fraction of 2.4% results in prominent tensile properties with UTS of 530 MPa for the AD sample tested along horizontal direction. The increase in the area fraction of NbC (from 0.446% to 0.798%) after heat treatment is accountable for the further increase in the strength (5-20 MPa) of the HT samples. Adjusting the Ni content of the matrix closer to 36% (from 36.4% to 35.72%) resulted in a lower CTE of the HT samples. As a result, the strength (UTS of HT horizontal sample:540 MPa) and CTE (1.13×10-6C-1, 0-100°C) of the HT samples were both superior to those of their counterparts published in the literature. The findings presented in this research pave the way for the fast fabrication of large-sized Invar alloy components through WAAM.