Research progress of additive manufacturing magnesium alloy

被引:2
|
作者
Zhao Z.-X. [1 ]
Yan P.-F. [1 ]
Wu J. [2 ]
Sun H.-W. [2 ]
Wang J.-Y. [1 ]
Wang X. [1 ]
Ying T. [1 ]
Zeng X.-Q. [1 ]
机构
[1] National Engineering Research Center of Light Alloy Net Forming, Shanghai Jiao Tong University, Shanghai
[2] Aeronautical Radio Electronics Research Institute, AVIC, Shanghai
基金
中国国家自然科学基金;
关键词
additive manufacture; corrosion resistance; magnesium alloy; mechanical property; process parameter; SLM; WAAM;
D O I
10.11817/j.ysxb.1004.0609.2022-43624
中图分类号
学科分类号
摘要
With the urgent requirements for light-weighted industrial materials from the aerospace and weapon industries, magnesium alloys gradually attracts wide attention due to their low density. With the fast development of technology, the additive manufacturing technology combined with the topology optimization becomes possible to produce magnesium alloy in the large-scale integrated components, and to achieve the goal of producing light-weighted products. This work presents a concise review of global research trends in magnesium alloy additive manufacturing, identifying key challenges in the field and projecting future advancements in its forming technologies. © 2023 Central South University of Technology. All rights reserved.
引用
收藏
页码:2753 / 2773
页数:20
相关论文
共 99 条
  • [61] SHUAI Ci-jun, YANG You-wen, WU Ping, Et al., Laser rapid solidification improves corrosion behavior of Mg-Zn-Zr alloy[J], Journal of Alloys and Compounds, 691, pp. 961-969, (2017)
  • [62] ESMAILY M, ZENG Z, MORTAZAVI A N, Et al., A detailed microstructural and corrosion analysis of magnesium alloy WE43 manufactured by selective laser melting, Additive Manufacturing, 35, (2020)
  • [63] GANGIREDDY S, GWALANI B, LIU Kai-miao, Et al., Microstructure and mechanical behavior of an additive manufactured (AM) WE43-Mg alloy[J], Additive Manufacturing, 26, (2019)
  • [64] YIN Yong, HUANG Qian-li, LIANG Lu-xin, Et al., In vitro degradation behavior and cytocompatibility of ZK30/ bioactive glass composites fabricated by selective laser melting for biomedical applications[J], Journal of Alloys and Compounds, 785, (2019)
  • [65] HE Chong-xian, BIN Shi-zhen, WU Ping, Et al., Microstructure evolution and biodegradation behavior of laser rapid solidified Mg-Al-Zn alloy, Metals, 7, 3, (2017)
  • [66] LIU Chang, ZHANG Min, CHEN Chang-jun, Effect of laser processing parameters on porosity, microstructure and mechanical properties of porous Mg-Ca alloys produced by laser additive manufacturing[J], Materials Science and Engineering A, 703, (2017)
  • [67] YAO Xi-yu, TANG Jin-Cheng, ZHOU Ying-hao, Et al., Surface modification of biomedical Mg-Ca and Mg-Zn-Ca alloys using selective laser melting: Corrosion behaviour, microhardness and biocompatibility[J], Journal of Magnesium and Alloys, 9, pp. 2155-2168, (2020)
  • [68] GAO Cheng-de, LI Sheng, LIU Long, Et al., Dual alloying improves the corrosion resistance of biodegradable Mg alloys prepared by selective laser melting[J], Journal of Magnesium and Alloys, 9, 1, (2020)
  • [69] LIU Shuai, GUO Han-jie, Influence of hot isostatic pressing (HIP) on mechanical properties of magnesium alloy produced by selective laser melting (SLM), Materials Letters, 265, (2020)
  • [70] HYER H, ZHOU Le, BENSON G, Et al., Additive manufacturing of dense WE43 Mg alloy by laser powder bed fusion, Additive Manufacturing, 33, (2020)