158
Views
2
CrossRef citations to date
0
Altmetric
Research Articles

Research on 316 stainless steel low-power pulsed laser-induced arc additive manufacturing by different deposition routes

, , , & ORCID Icon
Pages 679-692 | Received 08 Sep 2022, Accepted 23 Nov 2022, Published online: 07 Dec 2022

References

  • Zhang X, Mi G, Chen L, et al. Microstructure and performance of hybrid laser-arc welded 40 mm thick 316 L steel plates. J Mater Process Technol. 2018;259:312–319.
  • Li ZA, Wu D. Effect of free-cutting additives on machining characteristics of austenitic stainless steels. J Mater Sci Technol. 2010;26(9):839–844.
  • Lee SK, Yun SH, Joo HG, et al. Deuterium transport and isotope effects in type 316L stainless steel at high temperatures for nuclear fusion and nuclear hydrogen technology applications. Curr Appl Phys. 2014;14(10):1385–1388.
  • Chen J, Wei H, Zhang X, et al. Flow behavior and microstructure evolution during dynamic deformation of 316 L stainless steel fabricated by wire and arc additive manufacturing. Mater Des. 2021;198:109325.
  • Oliveira JP, Shamsolhodaei A, Shen J, et al. Improving the ductility in laser welded joints of CoCrFeMnNi high entropy alloy to 316 stainless steel. Mater Des. 2022;219:110717.
  • Jin-Nan W, Peng-Fei F, Zhi-Yong M, et al. Microstructure and mechanical properties of 316 stainless steel multi-pool electron beam welding joints. Transact Mater Heat Treat. 2016;37(05):150–155.
  • Jiang Y, Li Y, Jia YF, et al. Gradient elastic-plastic properties of expanded austenite layer in 316L stainless steel. Acta Metall Sin. 2018;31(8):831–841.
  • Song R-B, Xiang J-y, Hou D-P Characteristics of mechanical properties and microstructure for 316L austenitic stainless steel. J Iron Steel Res Int. 2011;18(11):53–59.
  • Ma M, Wang Z, Wang D, et al. Control of shape and performance for direct laser fabrication of precision large-scale metal parts with 316L stainless steel. Opt Laser Technol. 2013;45:209–216.
  • Xie F, He X, Cao S, et al. Structural and mechanical characteristics of porous 316L stainless steel fabricated by indirect selective laser sintering. J Mater Process Technol. 2013;213(6):838–843.
  • Huang W, Lin X. Research progress in laser solid forming of high-performance metallic components at the state key laboratory of solidification processing of China. 3D Print Addit Manuf. 2014;1(3):156–165.
  • Bourell DL, Rosen DW, Leu MC. The roadmap for additive manufacturing and its impact. 3D Print Addit Manuf. 2014;1(1):6–9.
  • DebRoy T, Wei HL, Zuback JS, et al. Additive manufacturing of metallic components – process, structure and properties. Prog Mater Sci. 2018;92:112–224.
  • Zhang Y, Chen Y, Li P, et al. Weld deposition-based rapid prototyping: a preliminary study. J Mater Process Technol. 2003;135(2–3):347–357.
  • Xiong J, Zhang G. Adaptive control of deposited height in GMAW-based layer additive manufacturing. J Mater Process Technol. 2014;214(4):962–968.
  • Li B, Wang L, Wang B, et al. Electron beam freeform fabrication of NiTi shape memory alloys: crystallography, martensitic transformation, and functional response. Mater Sci Eng A. 2022;843:143135.
  • Damiens A, Bonnefoy H, Titeux I. Influence of processing parameters on mechanical and fatigue properties of 316 L steel manufactured by selective laser melting. Weld World. 2020;64(8):1321–1328.
  • Wang M, Wang Q, Lin X, et al. Microstructure and mechanical properties of laser solid formed 30Cr–Mn–Si–Ni–2A ultra-high-strength steel. Sci Technol Weld Join. 2019;24(5):457–464.
  • Yan Z, Liu W, Tang Z, et al. Effect of thermal characteristics on distortion in laser cladding of AISI 316L. J Manuf Process. 2019;44:309–318.
  • Xu X, Mi G, Luo Y, et al. Morphologies, microstructures, and mechanical properties of samples produced using laser metal deposition with 316L stainless steel wire. Opt Lasers Eng. 2017;94:1–11.
  • Langi E, Zhao LG, Jamshidi P, et al. Microstructural and mechanical characterization of thin-walled tube manufactured with selective laser melting for stent application. J Mater Eng Perform. 2021;30(1):696–710.
  • Boes J, Röttger A, Mutke C, et al. Microstructure and properties of a novel carbon-martensitic hot work tool steel processed by laser additive manufacturing without preheating. Steel Research Int. 2022; 2200439. DOI:10.1002/srin.202200439
  • Lopes JG, Machado CM, Duarte VR, et al. Effect of milling parameters on HSLA steel parts produced by wire and arc additive manufacturing (WAAM). J Manuf Process. 2020;59:739–749.
  • Baufeld B, Biest O, Gault R. Additive manufacturing of Ti–6Al–4V components by shaped metal deposition: microstructure and mechanical properties. Mater Des. 2010;31:S106–S111.
  • Zuo X, Zhang W, Chen Y, et al. Wire-based directed energy deposition of NiTiTa shape memory alloys: microstructure, phase transformation, electrochemistry, X-ray visibility and mechanical properties. Addit Manuf. 2022;59:103115.
  • Chen X, Li J, Cheng X, et al. Microstructure and mechanical properties of the austenitic stainless steel 316L fabricated by gas metal arc additive manufacturing. Mater Sci Eng A. 2017;703:567–577.
  • Laghi V, Palermo M, Tonelli L, et al. Tensile properties and microstructural features of 304L austenitic stainless steel produced by wire-and-arc additive manufacturing. Int J Adv Manuf Technol. 2020;106(9–10):3693–3705.
  • Guo P, Zou B, Huang C, et al. Study on microstructure, mechanical properties and machinability of efficiently additive manufactured AISI 316L stainless steel by high-power direct laser deposition. J Mater Process Technol. 2017;240:12–22.
  • Ye C, Lu G, Peng X, et al. Microstructure and mechanical properties of the 316 stainless steel nuclear grade experimental component made by wire and arc additive manufacturing. Proc Inst Mech Eng C: J Mech Eng Sci. 2020;234(21):4258–4267.
  • Salman OO, Brenne F, Niendorf T, et al. Impact of the scanning strategy on the mechanical behavior of 316L steel synthesized by selective laser melting. J Manuf Process. 2019;45:255–261.
  • Zhou Y, Qin G, Li L, et al. Formability, microstructure and mechanical properties of Ti-6Al-4V deposited by wire and arc additive manufacturing with different deposition paths. Mater Sci Eng A. 2020;772:138654.
  • Zhang Z, Sun C, Xu X, et al. Surface quality and forming characteristics of thin-wall aluminium alloy parts manufactured by laser assisted MIG arc additive manufacturing. Int J Lightweight Mater Manuf. 2018;1(2):89–95.
  • Bernd B, van der OB. Mechanical properties of Ti-6Al-4V specimens produced by shaped metal deposition. Sci Technol Adv Mater. 2009;10(1):015008.
  • Ding D, Pan Z, Cuiuri D, et al. A practical path planning methodology for wire and arc additive manufacturing of thin-walled structures. Robot Comput Integr Manuf. 2015;34:8–19.
  • Gong M, Meng Y, Zhang S, et al. Laser-arc hybrid additive manufacturing of stainless steel with beam oscillation. Addit Manuf. 2020;33:101180.
  • Hall EO. The deformation and ageing of mild steel: III discussion of results. Proc Phys Soc B. 1951;64(9):747–753.
  • Shifeng W, Shuai L, Qingsong W, et al. Effect of molten pool boundaries on the mechanical properties of selective laser melting parts. J Mater Process Technol. 2014;214(11):2660–2667.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.