Weldability study of alloys 625 and 718 fabricated by laser-based additive manufacturing

被引:0
|
作者
Guzman, Jhoan [1 ]
Riffel, Kaue C. [1 ]
Evans, William [2 ]
Brizes, Eric [3 ]
Avedissian, Nicholas [4 ]
Farias, Francisco Werley Cipriano [5 ,6 ]
Ramirez, Antonio J. [1 ]
机构
[1] Ohio State Univ, Mat Sci & Engn Dept, Welding Engn Program, 1248 Arthur E Adams Dr, Columbus, OH 43221 USA
[2] NASA Marshall Space Flight Ctr, Met Mat & Proc Branch, Huntsville, AL 35812 USA
[3] NASA Glenn Res Ctr, High Temp & Smart Alloys Branch, Cleveland, OH 44135 USA
[4] Hexagon Mfg Intelligence, North Kingstown, RI USA
[5] Univ Nova Lisboa, NOVA Sch Sci & Technol, Dept Mech & Ind Engn, UNIDEMI, P-2829516 Caparica, Portugal
[6] Fed Univ Rio de Janeiro UFRJ, Program Met & Mat Engn, BR-21941972 Rio De Janeiro, RJ, Brazil
关键词
Transverse varestraint testing; Directed energy deposition; Laser powder bed fusion; Alloy; 718; 625; NB-BEARING SUPERALLOYS; SHIELDING GAS; GRAIN-SIZE; SOLIDIFICATION; CRACKING; AR-O-2;
D O I
10.1016/j.jmapro.2025.02.051
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Nickel-based alloys, Alloys 625 and 718, are widely used in the aerospace industry due to their excellent corrosion resistance and high strength at elevated temperatures. Recently, these alloys have been utilized to manufacture rocket engine components using additive manufacturing (AM) technologies such as laser powder bed fusion (LPBF) and powder-blown laser-based directed energy deposition (DED). These technologies offer faster and more cost-effective production while enabling the fabrication of near-net-shape parts that are subsequently joined by welding. However, solidification cracking susceptibility varies significantly between AM and conventionally processed materials, and limited weldability characterization has been conducted on AMfabricated materials. This study assesses the weld solidification cracking susceptibility of Alloys 625 and 718 produced by wrought (mill-rolled), LPBF, and DED using transverse varestraint testing, Scheil-Gulliver simulations, the Crack Susceptibility Index (CSI), and the Flow Resistance Index (FRI). Transverse varestraint testing revealed that AM parts exhibited higher susceptibility due to the presence of larger and elongated grains in the fusion zone, affecting the weld solidification cracking response. In Alloy 625, the LPBF condition exhibited the highest maximum crack distance (MCD) of 2.35 f 0.16 mm, compared to 1.56 f 0.06 mm for wrought and 1.72 f 0.10 mm for DED. Similarly, in Alloy 718, the DED condition showed the highest MCD of 2.93 f 0.41 mm, while the wrought condition had an MCD of 2.01 f 0.12 mm, and the LPBF condition reached 3.01 f 0.33 mm at 5 % strain, without a clearly defined saturation strain. Although wrought materials demonstrated greater resistance to solidification cracking, solidification simulations did not correlate with the experimental testing, as they do not account for microstructural and mechanical factors, relying solely on chemistry.
引用
收藏
页码:556 / 569
页数:14
相关论文
共 50 条
  • [1] Laser-based additive manufacturing of refractory metals and their alloys: A review
    Funch, Cecilie Vase
    Proust, Gwenaelle
    ADDITIVE MANUFACTURING, 2024, 94
  • [2] Laser-Based Additive Manufacturing of Zirconium
    Sahasrabudhe, Himanshu
    Bandyopadhyay, Amit
    APPLIED SCIENCES-BASEL, 2018, 8 (03):
  • [3] Laser-Based Additive Manufacturing of Metals
    Kumar, Sanjay
    Pityana, Sisa
    LASER AND PLASMA APPLICATIONS IN MATERIALS SCIENCE, 2011, 227 : 92 - 95
  • [4] Advancements in the Additive Manufacturing of Magnesium and Aluminum Alloys through Laser-Based Approach
    Sharma, Sachin Kumar
    Grewal, Harpreet Singh
    Saxena, Kuldeep Kumar
    Mohammed, Kahtan A.
    Prakash, Chander
    Davim, J. Paulo
    Buddhi, Dharam
    Raju, Ramesh
    Mohan, Dhanesh G.
    Tomkow, Jacek
    MATERIALS, 2022, 15 (22)
  • [5] The significant impact of grain refiner on γ-TiAl intermetallic fabricated by laser-based additive manufacturing
    Huang, Danni
    Tan, Qiyang
    Zhou, Yinghao
    Yin, Yu
    Wang, Feng
    Wu, Tao
    Yang, Xianliang
    Fan, Zhiqi
    Liu, Yingang
    Zhang, Jingqi
    Huang, Han
    Yan, Ming
    Zhang, Ming-Xing
    ADDITIVE MANUFACTURING, 2021, 46
  • [6] Effects of processing parameters on a β-solidifying TiAl alloy fabricated by laser-based additive manufacturing
    Huang, Danni
    Dong, Yangping
    Chen, Hancong
    Zhou, Yinghao
    Zhang, Ming-Xing
    Yan, Ming
    MICROSTRUCTURES, 2022, 2 (04):
  • [7] Grain growth in IN718 superalloy fabricated by laser additive manufacturing
    Cao, Yu
    Bai, Pucun
    Liu, Fei
    Hou, Xiaohu
    MATERIALS SCIENCE AND TECHNOLOGY, 2020, 36 (06) : 765 - 769
  • [8] Laser-based additive manufacturing: Processes and materials
    Schmidt, Michael
    Dahotre, Narendra B.
    Bourell, David
    Toyserkani, Ehsan
    OPTICS AND LASER TECHNOLOGY, 2021, 139
  • [9] Sustainability issues in laser-based additive manufacturing
    Sreenivasan, R.
    Goel, A.
    Bourell, D. L.
    LASER ASSISTED NET SHAPE ENGINEERING 6, PROCEEDINGS OF THE LANE 2010, PART 1, 2010, 5 : 81 - 90
  • [10] Corrosion behavior of dental alloys-processed by laser-based additive manufacturing procedures
    Savencu, Cristina E.
    Birdeanu, Mihaela
    Porojan, Sorin D.
    Porojan, Liliana
    SEVENTH INTERNATIONAL CONFERENCE ON LASERS IN MEDICINE, 2018, 10831