The mechanism and regulation of hot cracking in a new complex-concentrated alloy by a novel integrated directed energy deposition

被引:6
|
作者
Wang, Shuai [1 ,2 ]
Yu, Chun [1 ,2 ]
Yin, Hongfei [3 ]
Li, Chuanzong [1 ,2 ]
Wang, Haodong [1 ,2 ]
Miao, Yuxin [1 ,2 ]
Yuan, Yong [3 ]
Xu, Jijin [1 ,2 ]
机构
[1] Shanghai Jiao Tong Univ, Sch Mat Sci & Engn, Shanghai Key Lab Mat Laser Proc & Modificat, Shanghai 200240, Peoples R China
[2] Shanghai Jiao Tong Univ, Sch Mat Sci & Engn, Shanghai 200240, Peoples R China
[3] Xian Thermal Power Res Inst Co Ltd, R&D Ctr, Xian 710032, Peoples R China
基金
中国国家自然科学基金;
关键词
Integrated directed laser deposition method; Hot cracks; Complex-concentrated alloy; Numerical simulation; MICROSTRUCTURAL EVOLUTION; LIQUATION CRACKING; BASE SUPERALLOY; BEHAVIOR; HAZ;
D O I
10.1016/j.addma.2023.103948
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Improving thermal efficiency in advanced ultra-supercritical coal-fired power plants relies on increased steam temperature and pressure, accelerating the emergence of newly complex-concentrated alloys (CCAs). However, the new developed CCA have a combined Al and Ti content for 4.87 wt%, which indicates a high susceptibility to hot cracking. In this work, the hot cracking problem for the CCA during the laser deposition process was studied. The eutectic of the matrix and carbides with a low melting point liquefied during reheating process. The hot cracking occurred with local unbearable stress concentration. Based on the above analysis of hot cracking, a novel integrated directed laser deposition method was proposed to flexibly adjust the microstructure evolution and stress distribution by thermal cycles to achieve the control of hot cracks. The microstructure evolution and the control of residual stress are realized by gas quenching and preheating substrates, respectively. The evidence was obtained to show that the coupled process with synchronous gas quenching during preheating can eliminate the hot cracks effectively. More specifically, the preheating process relieved the residual stress, and the local gas quenching simultaneously accelerated the liquid film solidification and reduced carbide segregation. Finally, the sample prepared by the integrated directed energy deposition presented superior overall performance with ultimate tensile strength of 991.84 MPa and elongation of 18.28 %. This work provides a meaningful reference for producing crack-free superalloys in metal additive manufacturing.
引用
收藏
页数:19
相关论文
共 22 条
  • [1] Microalloying design in directed energy deposition of complex-concentrated alloy: Pre-nitriding to inhibit hot cracking and promote mechanical properties
    Wang, Shuai
    Xu, Jijin
    Li, Ruoyu
    Shi, Ruxing
    Sun, Xiaohong
    Wang, Haodong
    Yu, Xingsheng
    Yu, Chun
    ADDITIVE MANUFACTURING, 2024, 92
  • [2] In-situ N-doping to improve wear and corrosion resistance of a complex-concentrated alloy manufactured by directed energy deposition
    Wang, Shuai
    Li, Ruoyu
    Shi, Ruxing
    Wang, Haodong
    Sun, Xiaohong
    Yu, Xingsheng
    Yu, Chun
    Xu, Jijin
    TRIBOLOGY INTERNATIONAL, 2024, 200
  • [3] Unravelling the cracking mechanism in wire-based laser-directed energy deposition processing high-strength aluminum alloy
    Wang, Mengjie
    Al-Hamdany, Nowfal
    Deng, Yujie
    Maawad, Emad
    Luo, Shengnian
    Kashaev, Nikolai
    JOURNAL OF MANUFACTURING PROCESSES, 2025, 137 : 437 - 456
  • [4] Cracking mechanism of Hastelloy X superalloy during directed energy deposition additive manufacturing
    Guo, Bojing
    Zhang, Yashan
    Yang, Zhongsheng
    Cui, Dingcong
    He, Feng
    Li, Junjie
    Wang, Zhijun
    Lin, Xin
    Wang, Jincheng
    ADDITIVE MANUFACTURING, 2022, 55
  • [5] A novel method to prevent cracking in directed energy deposition of Inconel 738 by in-situ doping Inconel 718
    Zhang, Xiaoqiang
    Chai, Ze
    Chen, Huabin
    Xu, Jijin
    Xu, Luming
    Lu, Hao
    Chen, Xiaoqi
    MATERIALS & DESIGN, 2021, 197 (197)
  • [6] The cracking behavior of Ni superalloys fabricated by laser directed energy deposition: The spatial distribution and formation mechanism
    Yang, Xingming
    Liu, Miao
    Yu, Hao
    Liu, Zhongqiu
    Li, Jinguo
    Xu, Wei
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2025, 924
  • [7] Corrosion and stress corrosion cracking characteristics of 4043 aluminium alloy fabricated through directed energy deposition process
    Ujjwal, Kumar
    Al-Saadi, Saad
    Das, Alok Kumar
    Raman, R. K. Singh
    JOURNAL OF ALLOYS AND COMPOUNDS, 2024, 976
  • [8] The microstructure and precipitated phase dependence of plastic deformation and fracture mechanism in repaired IN718 alloy by directed energy deposition
    Zhang, Yiting
    Lan, Liangyun
    Shi, Quanqiang
    JOURNAL OF ALLOYS AND COMPOUNDS, 2024, 990
  • [9] Pore Formation Mechanism in W-C Hard Coatings Using Directed Energy Deposition on Tungsten Alloy
    Zhang, Xinrui
    Fu, Weijie
    Wang, Chen
    Lei, Zhenglong
    Sun, Haoran
    Li, Xudong
    ACTA METALLURGICA SINICA-ENGLISH LETTERS, 2024, 37 (01) : 89 - 101
  • [10] Revealing thermal behavior, cracking behavior, phase and microstructure formation of a ternary equiatomic alloy additively manufactured using directed energy deposition
    Guan, S.
    Wan, D.
    Chen, S. H.
    Zhao, L.
    Wang, Y. L.
    Qin, B. L.
    Zhang, Y. Y.
    Chan, K. C.
    ADDITIVE MANUFACTURING, 2023, 78