Effects of laser scanning rotation angle on microstructure and mechanical properties of selective laser melted FeCoCrNiMn-(N, Si) high entropy alloy

被引:0
|
作者
Zhang Z.-L. [1 ,2 ]
Guo L. [1 ]
Gu J. [1 ]
Wang Z.-W. [1 ]
Song M. [1 ]
机构
[1] State Key Laboratory of Powder Metallurgy, Central South University, Changsha
[2] China National Building Material Group, Technology Innovation Academy, Zaozhuang
基金
中国国家自然科学基金;
关键词
high entropy alloys; mechanical property; microstructure; selective laser melting;
D O I
10.11817/j.ysxb.1004.0609.2022-43367
中图分类号
学科分类号
摘要
In this paper, FeCoCrNiMn-(N, Si) high-entropy alloy was fabricated by selective laser melting process, at laser scanning rotation angles of 45°, 67° and 90°. The hierarchical microstructure, grain size and morphology, hot cracks and mechanical properties of the three specimens were systematically investigated using various characterization techniques. The results show that the sample prepared at laser scanning rotation angle of 45° mainly shows columnar dendrites grown epitaxially across the melt pool with large grain size (about 128 μm), as well as a high density of hot cracks. In contrast, the sample prepared at laser scanning rotation angle of 67° has a high density of cellular structure, a high density of dislocation entanglements existing both along the cell walls and inside the cells, a fine grain size of about 69 μm and a low density of hot cracks. The hierarchical microstructure prepared by selective laser melting can effectively improve the mechanical properties. The deformation mechanism of FeCoCrNiMn-(N, Si) high-entropy alloys is as follows: a small number of the deformed microbands at low strain, high-density deformation microbands and a small number of nanotwins at the high strain. © 2023 Central South University of Technology. All rights reserved.
引用
收藏
页码:1855 / 1867
页数:12
相关论文
共 40 条
  • [11] SUN Xiao-feng, SONG Wei, LIANG Jing-jing, Et al., Research and development in materials and processes of superalloy fabricated by laser additive manufacturing, Acta Metallurgica Sinica, 57, 11, (2021)
  • [12] HUANG J, LI W P, HE J Y, Et al., Dual heterogeneous structure facilitating an excellent strength-ductility combination in an additively manufactured multi-principalelement alloy[J], Materials Research Letters, 10, 9, (2022)
  • [13] SU Jie, CHEN Shi-qi, DING Zheng-yang, Et al., Solidification behavior of eutectic high entropy alloy fabricated by selective laser melting, The Chinese Journal of Nonferrous Metals, 32, 3, (2022)
  • [14] ZHU Z G, NGUYEN Q B, NG F L, Et al., Hierarchical microstructure and strengthening mechanisms of a CoCrFeNiMn high entropy alloy additively manufactured by selective laser melting, Scripta Materialia, 154, (2018)
  • [15] SONG M, ZHOU R, GU J, Et al., Nitrogen induced heterogeneous structures overcome strength-ductility tradeoff in an additively manufactured high-entropy alloy, Applied Materials Today, 18, (2020)
  • [16] LIU F C, LIN X, HUANG C P, Et al., The effect of laser scanning path on microstructures and mechanical properties of laser solid formed nickel-base superalloy Inconel 718, Journal of Alloys and Compounds, 509, 13, (2011)
  • [17] CHENG B, SHRESTHA S, CHOU K., Stress and deformation evaluations of scanning strategy effect in selective laser melting, Additive Manufacturing, 12, (2016)
  • [18] ALMANGOUR B, GRZESIAK D, YANG J M., Scanning strategies for texture and anisotropy tailoring during selective laser melting of TiC/316L stainless steel nanocomposites, Journal of Alloys and Compounds, 728, (2017)
  • [19] ZHOU X, LI K, ZHANG D, Et al., Textures formed in a CoCrMo alloy by selective laser melting[J], Journal of Alloys and Compounds, 631, (2015)
  • [20] FENG Qing-xiao, LI Duo-sheng, YE Yin, Et al., Finite element analysis of laser volume energy density on selected laser melting forming, The Chinese Journal of Nonferrous Metals, 32, 2, (2022)