Defects in Wire Arc Additive Manufacturing of Stainless Steel: A Brief Critical Review

被引:0
作者
Omiyale, Babatunde Olamide [1 ]
Ogedengbe, Ikeoluwa Ireoluwa [2 ]
Ogbeyemi, Akinola [3 ]
Akinfolarin, John Femi [4 ]
Adewole, Kehinde Abiodun [2 ]
Zhang, Wenjun Chris [1 ,3 ]
机构
[1] Univ Saskatchewan, Coll Engn, Dept Mech Engn, Saskatoon, SK, Canada
[2] Fed Univ Technol Akure, Dept Mech Engn, Akure, Nigeria
[3] Univ Saskatchewan, Coll Engn, Div Biomed Engn, Saskatoon, SK, Canada
[4] Fed Univ Technol Akure, Dept Met & Mat Engn, Akure, Nigeria
关键词
Wire Arc additive manufacturing; Defects; Stainless steel; Cold metal transfer; Process parameters; Optimization; HEAT-AFFECTED ZONE; MECHANICAL-PROPERTIES; RESIDUAL-STRESS; MICROSTRUCTURE; POROSITY; PARAMETERS; COMPONENTS; PARTS; OPTIMIZATION; ENHANCEMENT;
D O I
10.1007/s40516-025-00307-7
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Wire Arc Additive Manufacturing (WAAM) is prone to various defects arising from its inherent welding-based process, layer-by-layer fabrication, and the complex thermal-mechanical interactions involved. The main challenge in WAAM is managing these variables to produce parts with consistent and reliable properties. Despite employing optimal parameters such as cold metal transfer (CMT) power, wire feed speed, deposition speed, layer thickness, wire diameter, travel speed, and shielding gas flow rate to achieve a uniform temperature distribution during the printing process, some parts made with these technologies still experience defects. These include surface roughness, cracking, and porosity, which represent significant knowledge gaps in the field. This critical review aimed to identify the root causes of defect formation in the WAAM process. Defects like porosity, residual stresses, lack of fusion, spatter, inclusions, distortion, and cracking can negatively affect the surface quality and the mechanical and microstructural properties of WAAM-produced stainless steel if not adequately controlled. To address this gap, the paper thoroughly examines techniques for reducing defect formation, identifies the causes of these defects and mitigation approaches, and highlights the benefits of selecting suitable optimum process parameters to fabricate defect-free WAAM stainless steel components. One of the primary contributions of this review is the establishment of a framework for future researchers to control the sources of defect formation in the WAAM system, ultimately leading to the creation of defect-free metallic components.
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页数:45
相关论文
共 196 条
[1]  
Abdallah S., 2022, INT MECH ENG C EXP, P1, DOI [10.1115/IMECE2021-73573, DOI 10.1115/IMECE2021-73573]
[2]  
Abdulaziz I., 2022, Wire Arc Additive Manuf, V5, P4556, DOI [10.47191/ijcsrr/V5-i12-19, DOI 10.47191/IJCSRR/V5-I12-19]
[3]   FEM Simulation Procedure for Distortion and Residual Stress Analysis of Wire Arc Additive Manufacturing [J].
Ahmad, Siti Nursyahirah ;
Manurung, Yupiter H. P. ;
Mat, Muhd Faiz ;
Minggu, Zaidi ;
Jaffar, Ahmed ;
Pruller, Simon ;
Leitner, Martin .
6TH INTERNATIONAL CONFERENCE ON ADVANCES IN MECHANICAL ENGINEERING 2019 (ICAME 2019), 2020, 834
[4]   Heat-treatment effects on a bimetallic additively-manufactured structure (BAMS) of the low-carbon steel and austenitic-stainless steel [J].
Ahsan, Md. R. U. ;
Tanvir, A. N. M. ;
Seo, Gi-Jeong ;
Bates, Brian ;
Hawkins, Wayne ;
Lee, Chanho ;
Liaw, P. K. ;
Noakes, Mark ;
Nycz, Andrzej ;
Kim, Duck Bong .
ADDITIVE MANUFACTURING, 2020, 32
[5]   Additive manufacturing of shape memory alloys: A review with emphasis on powder bed systems [J].
Alagha, Ali N. ;
Hussain, Shahadat ;
Zaki, Wael .
MATERIALS & DESIGN, 2021, 204
[6]   Preventing columnar grains growth during hybrid wire arc additive manufacturing of austenitic stainless steel 316L [J].
Albannai, Abdulaziz I. ;
Leon-Henao, Henry ;
Ramirez, Antonio J. .
ENGINEERING REPORTS, 2024, 6 (11)
[7]  
Albannai AI., 2022, Curr. Sci. Res. Rev, V5, P4556, DOI [10.47191/ijcsrr/V5-i12-19, DOI 10.47191/IJCSRR/V5-I12-19]
[8]  
Albannai AI., 2024, Discov Mech Eng, V3, P49, DOI [10.1007/s44245-024-00082-3, DOI 10.1007/S44245-024-00082-3]
[9]   Use of the cast pin tear test to study solidification cracking [J].
Alexandrov, B. T. ;
Lippold, J. C. .
WELDING IN THE WORLD, 2013, 57 (05) :635-648
[10]   In-situ residual stress reduction, martensitic decomposition and mechanical properties enhancement through high temperature powder bed pre-heating of Selective Laser Melted Ti6Al4V [J].
Ali, Haider ;
Ma, Le ;
Ghadbeigi, Hassan ;
Mumtaz, Kamran .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2017, 695 :211-220