Wire arc additive manufacturing of high-strength low alloy steels: study of process parameters and their influence on the bead geometry and mechanical characteristics

被引:2
作者
Ahmet Suat Yildiz
Kemal Davut
Barış Koc
Oguzhan Yilmaz
机构
[1] FNSS Savunma Sistemleri A.S,Advanced Manufacturing Technologies Research Group, Department of Mechanical Engineering, Faculty of Engineering
[2] Gazi University,Metal Forming Center of Excellence
[3] Atilim University,Department of Metallurgical and Materials Engineering
[4] Atilim University,undefined
来源
The International Journal of Advanced Manufacturing Technology | 2020年 / 108卷
关键词
Wire arc additive manufacturing; High-strength low alloy steels; Microstructure; Mechanical properties;
D O I
暂无
中图分类号
学科分类号
摘要
Additive manufacturing (AM) is becoming increasingly popular since it offers flexibility to produce complex designs with less tooling and minimum material at shorter lead times. Wire arc additive manufacturing (WAAM) is a variant of additive manufacturing which allows economical production of large-scale and high-density parts. The WAAM process has been studied extensively on different steels; however, the influence of process parameters, specifically wire feed speed (WFS), travel speed (TS), and their ratio on bead geometry, microstructure, and mechanical properties, are yet to be studied. The present work aims at closing this gap by using the WAAM process with robotic cold metal transfer (CMT) technology to manufacture high-strength structural steel parts. For that purpose, single-bead welds were produced from HSLA steel by varying WFS between 5 and 10 m/min and the WFS to TS ratio between 10 and 20. Those variations produce heat inputs in the range of 266–619 J/mm. The results have shown that the wire feed speed to travel speed ratio is the major parameter to control the heat input. Increasing heat input increases characteristic bead dimension, whereas it reduces the hardness. In the second part of experiments, two single-bead walls were deposited via the parallel deposition strategy and one multiple-bead wall was produced using the oscillation strategy. The tensile properties were tested along two directions: parallel and perpendicular to deposition directions. For the yield strength and tensile strength, the difference between horizontally and vertically tested specimens was smaller than the standard deviations. On the other hand, the total and uniform elongation values exhibit up to 10% difference in the test direction, indicating anisotropy in ductility. Those tensile properties were attributed to repeated thermal cycles during the WAMM process, which can cause heat transfer in multiple directions. The yield strength of the multiple-bead wall produced via oscillation was lower, whereas its ductility was higher. The tensile properties and hardness differences were found to correlate well with the microstructure.
引用
收藏
页码:3391 / 3404
页数:13
相关论文
共 129 条
  • [1] Frazier WE(2014)Metal additive manufacturing: a review J Mater Eng Perform 23 1917-1928
  • [2] Williams SW(2016)Wire + arc additive manufacturing Mater Sci Technol 32 641-647
  • [3] Martina F(2019)Metal 3D printing in construction: a review of methods, research, applications, opportunities and challenges Eng Struct 180 332-348
  • [4] Addison AC(2018)Analytical process model for wire + arc additive manufacturing Addit Manuf 21 651-657
  • [5] Ding J(2015)Wire-feed additive manufacturing of metal components: technologies, developments and future interests Int J Adv Manuf Technol 81 465-481
  • [6] Pardal G(2018)Preliminary investigation of building strategies of maraging steel bulk material using wire + arc additive manufacture J Mater Eng Perform 28 1-7
  • [7] Colegrove P(2012)Effect of deposition parameters on mechanical properties of shaped metal deposition parts Proc Inst Mech Eng Part B J Eng Manuf 226 126-136
  • [8] Buchanan C(2019)Investigation of process factors affecting mechanical properties of INCONEL 718 superalloy in wire + arc additive manufacture process J Mater Process Technol 265 201-209
  • [9] Gardner L(2018)Additive manufacturing using WAAM with AA5183 wire J Mater Process Technol 259 68-74
  • [10] Ríos S(2018)On the toughness scatter in low alloy C-Mn steel samples fabricated using wire arc additive manufacturing Mater Sci Eng A 713 18-27