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Materials Science in Additive Manufacturing Process study of DED steel matrix composites
Author contributions https://doi.org/10.1016/j.jmatprotec.2021.117117
Conceptualization: Swee Leong Sing 10. Groden C, Traxel KD, Afrouzian A, et al., 2022, Inconel
Formal analysis: Yao Ting Ang 718-W7Ni3Fe bimetallic structures using directed energy
Investigation: Joel Choon Wee Lim, Yao Ting Ang deposition-based additive manufacturing. Virtual Phys
Prototyp, 17: 170–180.
Methodology: Swee Leong Sing, Yao Ting Ang
Project administration: Swee Leong Sing https://doi.org/10.1080/17452759.2022.2025673
Resources: Swee Leong Sing 11. Sehhat MH, Sutton AT, Hung CH, et al., 2022, Plasma
Supervision: Swee Leong Sing spheroidization of gas-atomized 304L stainless steel powder
Validation: Joel Choon Wee Lim, Yao Ting Ang for laser powder bed fusion process. Mater Sci Addit Manuf,
Visualization: Swee Leong Sing, Yao Ting Ang 1: 11.
Writing–original draft: Swee Leong Sing, Yao Ting Ang https://doi.org/10.18063/msam.v1i1.1
Writing–review and editing: Swee Leong Sing.
12. Wu CL, Zhang S, Zhang CH, et al., 2019, Effects of SiC
References content on phase evolution and corrosion behavior of SiC-
reinforced 316L stainless steel matrix composites by laser
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components. Mater Sci Addit Manuf, 1: 3. treatment. Powder Technol, 309: 37–48.
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metallic materials via powder-fed laser directed energy with excellent room and high-temperature yield strength
deposition: A review. J Mater Porc Technol, 294: 117117. developed by additive manufacturing. Compos Part B Eng,
Volume 1 Issue 2 (2022) 9 http://doi.org/10.18063/msam.v1i2.13

