Anisotropic mechanical properties of ni-base superalloy compacts by direct laser forming technology

被引:0
作者
Yoshigai N. [1 ]
Kudo K. [2 ]
Tsumori F. [2 ]
Osada T. [2 ]
Miura H. [2 ]
机构
[1] Dept. Mechanical Engineering, Graduate School of Kyushu University, 744 Motooka, Nishi-ku, Fukuoka
[2] Dept. Mechanical Engineering, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka
来源
Kudo, Kentaro (kudo.kentaro.801@m.kyushu-u.ac.jp) | 1600年 / Journal of the Japan Society of Powder and Powder Metallurgy, 15 Morimoto-cho Shimogamo, Sakyo-Ku Kyoto, Japan卷 / 63期
关键词
Anisotropy; Building direction; Direct laser forming (DLF); Mechanical properties; Ni-base superalloy;
D O I
10.2497/jjspm.63.427
中图分类号
学科分类号
摘要
As Ni-based superalloy has poor workability, direct laser forming (DLF) would be a powerful tool for fabricating the complex shaped Ni-based superalloy parts. We focused on the microstructure of the parts produced by DLF, the crystal grains of which grow along the building direction. This anisotropic microstructure is one of the major features of the parts produced by DLF, and which may cause anisotropic mechanical properties. In this work, the optimum laser-forming conditions such as laser power, laser scan speed, and powder feeding rate were determined by evaluating the density of the produced parts. Three types of tensile test pieces and two types of fatigue test pieces were fabricated in different building direction. They had higher ultimate tensile strength than that of JIS standards in wrought materials. However, their elongation was lower than that of JIS standards, and also the dispersion of elongation was large. On the other hand, fatigue limit was a little lower than the standard value. It was confirmed that the mechanical properties of Ni-based superalloy parts produced by DLF were different by a difference in building direction.
引用
收藏
页码:427 / 433
页数:6
相关论文
共 19 条
  • [1] Itakura K., Kuroda M., Et al., Wear mechanism of coated cemented carbide tool in cutting of super heat resisting alloy inconel 718, The Japan Society for Precision Engineering, 65, pp. 976-981, (1999)
  • [2] Amato K.N., Gaytan S.M., Et al., Microstructures and mechanical behavior of inconel 718 fabricated by selective laser melting, Acta Materialia, 60, pp. 2229-2239, (2012)
  • [3] Murr L.E., Martinez E., Et al., Fabrication of metal and alloy components by additive manufacturing: Examples of 3d materials science, Journal of Materials Research and Technology, 1, pp. 42-54, (2012)
  • [4] Liu F., Lin X., Et al., Microstructure and residual stress of laser rapid formed inconel 718 nickel-base superalloy, Optics & Laser Technology, 43, pp. 208-213, (2011)
  • [5] Liu F., Lin X., Et al., The effect of laser scanning path on microstructures and mechanical properties of laser solid formed nickel-base superalloy inconel 718, Journal of Alloys and Compounds, 509, pp. 4505-4509, (2011)
  • [6] Qiu C., Adkins N.J.E., Attallah M.M., Microstructure and tensile properties of selectively laser-melted and of hiped laser-melted ti-6al-4v, Materials Science & Engineering A, 578, pp. 230-239, (2013)
  • [7] Cain V., Thijs L., Et al., Crack propagation and fracture toughness of ti6al4v alloy produced by selective laser melting, Additive Manufacturing, 5, pp. 68-76, (2015)
  • [8] Wu M.W., Lai P.H., Et al., Anisotropy in the impact toughness of selective laser melted ti-6al-4v alloy, Materials Science and Engineering: A, 650, pp. 295-299, (2016)
  • [9] Kunze K., Etter T., Et al., Texture, anisotropy in microstructure and mechanical properties of in738lc alloy processed by selective laser melting (slm), Materials Science & Engineering A, 620, pp. 213-222, (2015)
  • [10] Boegelein T., Dryepondt S.N., Et al., Mechanical response and deformation mechanisms of ferritic oxide dispersion strengthened steel structures produced by selective laser melting, Acta Materialia, 87, pp. 201-215, (2015)