Characterization of an austenitic stainless steel preform deposited by wire arc additive manufacturing

被引:0
|
作者
Lídia B. O. Souza
Maria R. N. Santos
Regina P. Garcia
Diandro B. Fernandes
Louriel O. Vilarinho
机构
[1] Federal University of Uberlândia,
关键词
316L; WAAM; Microstructure; Mechanical strength; Electrochemistry;
D O I
暂无
中图分类号
学科分类号
摘要
Additive manufacturing (AM) is a fabrication process based on the addition of material by layers and has shown several advantages against other manufacturing processes, such as low cost and possibility of manufacturing parts with complex geometries. However, the additive manufacturing can change the properties of the workpiece due to the strategy of multilayer deposition, which can cause changes in the microstructure of the deposited material. In this sense, this work aimed to evaluate the chemical composition, microstructure, and mechanical and electrochemical behavior of the 316L stainless steel manufactured by wire and arc additive manufacturing (WAAM), comparing it with a sample of the same alloy in the annealed condition, trying to understand how the different layers interfere in the final behavior of the material. The results indicate that the microstructure of the deposited material is different with the presence of ferrite in an austenitic matrix. Two regions whose microstructure had different morphologies were also identified in the WAAM alloy. In the region close to the fusion line between the deposited layers, the austenite grains are smaller, about 5 μm wide, against 10 μm of the grains in the area most to the center of the layers. This microstructural change caused an irregular microhardness profile, with an average of 276 HV, higher than the 190 HV of conventional material. It was also observed that the WAAM process caused a decrease in the yield strength (YS) (23%) and elongation (78%) of the alloy and a slight increase in the value of ultimate tensile strength (UTS) (9%); however, it still meets the minimum requirements for most industrial applications required for the material studied (min. UTS 485 MPa, min. YS 170 MPa, and min. elongation 35 MPa). Moreover, the electrochemical results in simulated seawater solution indicate that the corrosion potential of the deposited sample is like that of the conventional specimen (about 0.24 V), with the potential passivating of the first to be superior to that of the second, respectively, 0.640 V and 0.560 V.
引用
收藏
页码:3673 / 3686
页数:13
相关论文
共 50 条
  • [41] Resonant ultrasound elastic characterization of steel wire arc additive manufacturing samples
    Le Bourdais, Florian
    Mahmoudiniya, Mahdi
    Gardahaut, Audrey
    Kestens, Leo A. I.
    MATERIALS CHARACTERIZATION, 2025, 220
  • [42] Microstructure and Hot Oxidation Resistance of Wrought and Wire Arc Additive Manufactured Austenitic Stainless Steel 347
    Kannan, Arasappan Rajesh
    Rajkumar, Vasu
    Durgaprasad, Channabasavaiah
    Shanmugam, Nallathambi Siva
    Rajkumar, Vijayakumar
    Yoon, Jonghun
    STEEL RESEARCH INTERNATIONAL, 2024,
  • [43] Microstructure and properties of 316L stainless steel fabricated by speed arc wire arc additive manufacturing
    Wang Q.
    Wang L.
    Gao Z.
    Yang X.
    Zhan X.
    Hanjie Xuebao/Transactions of the China Welding Institution, 2023, 44 (10): : 86 - 93
  • [44] Mechanical properties of 316L stainless steel fabricated by wire and arc additive manufacturing
    Zhao Y.
    Fan R.
    Liu Y.
    Wang Z.
    Jianzhu Jiegou Xuebao/Journal of Building Structures, 2023, 44 (08): : 207 - 216
  • [45] Microstructure and hot corrosion performance of stainless steel 347 produced by wire arc additive manufacturing
    Kannan, A. Rajesh
    Rajkumar, V.
    Prasad, C. Durga
    Shanmugam, N. Siva
    Yoon, Jonghun
    VACUUM, 2023, 210
  • [46] Microstructure and Mechanical Properties of AISI 420 Stainless Steel Produced by Wire Arc Additive Manufacturing
    Lunde, Jonas
    Kazemipour, Mostafa
    Salahi, Salar
    Nasiri, Ali
    TMS 2020 149TH ANNUAL MEETING & EXHIBITION SUPPLEMENTAL PROCEEDINGS, 2020, : 413 - 424
  • [47] Multi-material stainless steel fabrication using plasma wire arc additive manufacturing
    Segovia-Guerrero, Luis
    Balades, Nuria
    Attard, Bonnie
    De Nicolas, Maria
    Scotti, Americo
    Zammit, Ann
    Sales, David L.
    JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2024, 30 : 3996 - 4002
  • [48] Wire and arc additive manufacturing: a comparison between CMT and TopTIG processes applied to stainless steel
    N. Rodriguez
    L. Vázquez
    I. Huarte
    E. Arruti
    I. Tabernero
    P. Alvarez
    Welding in the World, 2018, 62 : 1083 - 1096
  • [49] Study on properties of 304 wire arc additive manufacturing stainless steel TIG welded joints
    Chen, Yunhao
    Zhao, Xiaohui
    Yang, Bin
    Liu, Yu
    Liang, Yongchang
    Li, Ziwei
    Chen, Chao
    MATERIALS LETTERS, 2024, 361
  • [50] Experimental and Numerical Investigation of CMT Wire and Arc Additive Manufacturing of 2205 Duplex Stainless Steel
    Yuan, Yuheng
    Li, Ruifeng
    Bi, Xiaolin
    Gu, Jiayang
    Jiao, Chen
    COATINGS, 2022, 12 (12)