Elucidation and Verification of Cracking Behavior in Additive Manufacturing of Alloy 718 Based on Fractography
Author:
Affiliation:
1. Graduate School of Engineering, Osaka University
2. Graduate School of Engineering, Osaka University (Current affiliation, Hitachi Zosen Corporation)
3. SHIBAURA MACHINE CO.,LTD.
Publisher
Japan Welding Society
Link
https://www.jstage.jst.go.jp/article/qjjws/42/1/42_1/_pdf
Reference22 articles.
1. 1) H. Kyogoku: Progress in Laser Additive Manufacturing Technology of Metals, Journal of Japan Welding Society, 83(2014), pp.250-253. (in Japanese)
2. 2) N J. Harrison, I Todd and Kamran Mumtaz: Reduction of micro-cracking in nickel superalloys processed by Selective Laser Melting: A fundamental alloy design approach, Acta Materialia, 94(2015), pp.59-68.
3. 3) R. Snell, S.T. Williams, L. Chechik, A. Lyle, E.H. Nava, C. Boig, G. Panoutsos, and I. Todd: Methods for Rapid Pore Classification in Metal Additive Manufacturing, JOM, 72(2020), pp.101-109. https://doi.org/10.1007/s11837-019-03761-9
4. 4) A. Ito, M. Matsuzawa, M. Obana, Y. Horita, K. Prasad, and S. Torizuka: Observation on Defects in the Specimen Produced by Selective Laser Melting in Ni Super Alloy, Research Report of Spring-8, 2021A1537.
5. 5) N. Lu, Z. Lei, K. Hu, X. Yu, P. Li, J. Bi, S. Wu, and Y. Chen: Hot cracking behavior and mechanism of third-generation Ni-based single-crystal superalloy during directed energy deposition, Additive Manufacturing, 34(2020), 101228.
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