4.7 Article

Effects of process parameters on microstructure and cracking susceptibility of a single crystal superalloy fabricated by directed energy deposition

期刊

MATERIALS & DESIGN
卷 198, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.matdes.2020.109296

关键词

Additive manufacturing; Single crystal superalloy; Epitaxial growth

资金

  1. National Key Research and Development Program of China [2016YFB0701404]
  2. Fundamental Research Funds for the Central Universities of Central South University
  3. Science Fund for Distinguished Young Scholars of Hunan Province, China [2016JJ1016]
  4. project of Innovation and Entrepreneur Team Introduced by Guangdong Province [201301G0105337290]
  5. Special Funds for Future Industrial Development of Shenzhen [HKHTZD20140702020004]
  6. Natural Science Foundation (NSF) of China [52074366]
  7. NSFC of Hunan Province [2019JJ50765]
  8. Innovation-Driven Project of State Key Laboratory for Powder Metallurgy [206031008]

向作者/读者索取更多资源

In this study, multi-track block samples were fabricated using the directed energy deposition technique. The effects of process parameters on cracking susceptibility were analyzed, and crack-free SX blocks were successfully achieved by adjusting the parameters. These findings provide guidance for reducing cracking susceptibility and fabricating large-scale crack-free SX blocks using the DED technique.
As an advanced material forming method, additive manufacturing (AM) has been rapidly developed in many industry fields. Due to the non-weldability of nickel-based single crystal (SX) superalloys and complex solidification and stress conditions of AM process, hot cracks can easily form in depositions. Previous research focused on the additive manufacturing of single-track thin-walled SX samples, while effective solutions to fabricate crack-free multi-track SX block samples are still limited. Directed energy deposition (DED) technique was used to fabricate multi-track block samples in this work. The effects of the overlapping ratio, scanning velocity, and laser power on the microstructure and cracking susceptibility were analyzed. The experimental results demonstrated that improper process parameters play significant roles in the formation of high-angle grain boundaries and large internal stress, both of which will increase the cracking susceptibility. Crack-free SX multi-track block was successfully fabricated after adjusting the process parameters. These findings provide a guide to reduce the cracking susceptibility by controlling the process parameters, which aids in fabrication of large-scale crack-free SX blocks through DED technique. (C) 2020 The Authors. Published by Elsevier Ltd.

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