Chinese Journal of Lasers, Volume. 49, Issue 22, 2202013(2022)
Research on Fiber Laser Butt Welding Process of 3D-GH3536/R-GH3128 Dissimilar Superalloy
[1] Karimi P, Raza T, Andersson J et al. Influence of laser exposure time and point distance on 75-μm-thick layer of selective laser melted Alloy 718[J]. The International Journal of Advanced Manufacturing Technology, 94, 2199-2207(2018).
[2] Wang X Q, Carter L N, Pang B et al. Microstructure and yield strength of SLM-fabricated CM247LC Ni-Superalloy[J]. Acta Materialia, 128, 87-95(2017).
[3] Liu K, Wang R, Qi H et al. Microstructure and tensile properties of GH3536 alloy formed by SLM[J]. Physical Testing and Chemical Analysis (Part A: Physical Testing), 55, 15-18(2019).
[4] Harrison N J, Todd I, Mumtaz K. Reduction of micro-cracking in nickel superalloys processed by Selective Laser Melting: a fundamental alloy design approach[J]. Acta Materialia, 94, 59-68(2015).
[5] Cao Z, Jiang R J, Du W Z et al. Distortion control by in-site high frequency peening in laser welding of thin-walled structures[J]. Chinese Journal of Lasers, 47, 0902003(2020).
[6] Luo M, Luo K Y, Wang Q W et al. Numerical simulation of laser shock peening on residual stress field of 7075-T6 aluminum alloy welding[J]. Acta Optica Sinica, 34, 0414003(2014).
[7] Azari M, Rasti E, Dehkordi S R et al. Investigation of temperature distribution and melt pool microstructure in laser fusion welding of Inconel 625 superalloy[J]. Journal of Laser Applications, 33, 022015(2021).
[8] Zhang Z Y, Wang S L, Chen Y H et al. Microstructure and Properties of 3D-GH3625 Electron beam welded[J]. IOP Conference Series: Materials Science and Engineering, 423, 012074(2018).
[9] das Neves M D M, Lotto A, Berretta J R et al. Microstructure development in Nd∶YAG laser welding of AISI 304 and Inconel 600[J]. Welding International, 24, 739-748(2010).
[10] Zhang Y, Hu X A, Jiang Y. Study on the microstructure and fatigue behavior of a laser-welded Ni-based alloy manufactured by selective laser melting method[J]. Journal of Materials Engineering and Performance, 29, 2957-2968(2020).
[11] Hu X A, Xue Z Y, Zhao G L et al. Laser welding of a selective laser melted Ni-base superalloy: microstructure and high temperature mechanical property[J]. Materials Science & Engineering A, 745, 335-345(2018).
[12] Zhou C Y, Wu S K, Xiao R S. Experimental investigation on fiber laser welding stainless steel 304 to super alloy GH3128[J]. Applied Laser, 2, 108-111(2012).
[13] Liu X B, Yu G, Pang M et al. Dissimilar autogenous full penetration welding of superalloy K418 and 42CrMo steel by a high power CW Nd∶YAG laser[J]. Applied Surface Science, 253, 7281-7289(2007).
[14] Gao R Q, Han X H, He Z Y et al. Research on the welding properties of typical butt joints with laser-welding[J]. Electric Welding Machine, 43, 65-69(2013).
[15] Zou J L, Yang W X, Wu S K et al. Effect of plume on weld penetration during high-power fiber laser welding[J]. Journal of Laser Applications, 28, 022003(2016).
[16] Zhang G L, Kong H, Zou J L et al. Spatter characteristics of high-power fibre laser deep penetration welding and effect of defocus on spatter[J]. Chinese Journal of Lasers, 48, 2202008(2021).
[17] Jiang Z G, Tao W, Yu K et al. Comparative study on fiber laser welding of GH3535 superalloy in continuous and pulsed waves[J]. Materials & Design, 110, 728-739(2016).
Get Citation
Copy Citation Text
Zhiwei Cheng, Baixin Qi, Tong Zhang, Zhenfei Yuan, Xin Du, Qiang Wu, Rongshi Xiao. Research on Fiber Laser Butt Welding Process of 3D-GH3536/R-GH3128 Dissimilar Superalloy[J]. Chinese Journal of Lasers, 2022, 49(22): 2202013
Category: laser manufacturing
Received: Jan. 24, 2022
Accepted: Apr. 24, 2022
Published Online: Nov. 9, 2022
The Author Email: Wu Qiang (jlwuqiang@bjut.edu.cn)