Microstructure and mechanical properties of (FeCoNiCr)100-xMnx non-equiatomic high-entropy alloys

被引:0
|
作者
Zhao K. [1 ]
Ai T.-T. [1 ,2 ]
Feng X.-M. [1 ,2 ]
Wang P.-J. [1 ]
Bao W.-W. [1 ,2 ]
Li W.-H. [1 ,2 ]
Kou L.-J. [1 ,2 ]
Dong H.-F. [1 ,2 ]
Zou X.-Y. [1 ,2 ]
Deng Z.-F. [1 ,2 ]
Zhao Z.-G. [1 ,2 ]
机构
[1] School of Materials Science and Engineering, Shaanxi University of Technology, Hanzhong
[2] National & Local Joint Engineering Laboratory for Environmental Protection Technology for Comprehensive Utilization of Slag, Shaanxi University of Technology, Hanzhong
关键词
Annealing twin; High-entropy alloy; Mechanical properties; Microstructure; Second phase strengthening;
D O I
10.11817/j.ysxb.1004.0609.2021-37902
中图分类号
学科分类号
摘要
The Non-equiatomic (FeCoNiCr)100-xMnx(x=0, 12, 20) high-entropy alloys were studied. The results indicate that (FeCoNiCr)100-xMnx alloys containing Mn prepared by vacuum hot pressing sintering present dual-phase microstructure compose of the face centered cubic (FCC)/body centered cubic (BCC) phases, in which a lot of nanometer intermetallic compounds precipitate. The (FeCoNiCr)88Mn12 alloy after annealed at 650 ℃ for 1 h has the best comprehensive mechanical properties, with compressive yield strength of 873.65 MPa, ultimate compressive strength of 1813.98 MPa, fracture strain of 41.03%, flexural strength of 1573.69 MPa and fracture toughness of 49.45 MPa•m1/2. The excellent comprehensive mechanical properties are attributed to the second phase strengthening effect of BCC phases and a large number of annealing twins form in the low stacking fault energy region. The design concept of TWIP-assisted non-equiatomic dual-phase high-entropy alloys can provide a new idea for the composition design of high-entropy alloys. © 2022, China Science Publishing & Media Ltd. All right reserved.
引用
收藏
页码:1351 / 1359
页数:8
相关论文
共 27 条
  • [1] YEH J W, CHEN S K, LIN S J, Et al., Nanostructured high-entropy alloys with multiple principal elements: Novel alloy design concepts and outcomes, Advanced Engineering Materials, 6, 5, pp. 299-303, (2004)
  • [2] ZHANG W R, LIAW P K, ZHANG Y., Science and technology in high-entropy alloys, Science China Materials, 61, 1, pp. 2-22, (2018)
  • [3] WU Z, BEI H, OTTO F, Et al., Recovery, recrystallization, grain growth and phase stability of a family of FCC-structured multi-component equiatomic solid solution alloys, Intermetallics, 46, pp. 131-140, (2014)
  • [4] SENKOV O N, SCOTT J M, SENKOVA S V, Et al., Microstructure and room temperature properties of a high-entropy TaNbHfZrTi alloy, Journal of Alloys and Compounds, 509, 20, pp. 6043-6048, (2011)
  • [5] LIU W H, LU Z P, HE J Y, Et al., Ductile CoCrFeNiMo<sub>x</sub> high entropy alloys strengthened by hard intermetallic phases, Acta Materialia, 116, pp. 332-342, (2016)
  • [6] TONG Y, CHEN D, HAN B, Et al., Outstanding tensile properties of a precipitation-strengthened FeCoNiCrTi<sub>0.2</sub> high-entropy alloy at room and cryogenic temperatures, Acta Materialia, 165, pp. 228-240, (2019)
  • [7] XU Z J, LI Z T, TONG Y, Et al., Microstructural and mechanical behavior of a CoCrFeNiCu<sub>4</sub> non-equiatomic high entropy alloy, Journal of Materials Science & Technology, 60, pp. 35-43, (2021)
  • [8] ZHANG T, XIN L J, WU F F, Et al., Microstructure and mechanical properties of Fe<sub>x</sub>CoCrNiMn high-entropy alloys, Journal of Materials Science & Technology, 35, 10, pp. 2331-2335, (2019)
  • [9] LIU T K, WU Z, STOICA A D, Et al., Twinning-mediated work hardening and texture evolution in CrCoFeMnNi high entropy alloys at cryogenic temperature, Materials & Design, 131, pp. 419-427, (2017)
  • [10] GAO X Z, LU Y P, ZHANG B, Et al., Microstructural origins of high strength and high ductility in an AlCoCrFeNi<sub>2.1</sub> eutectic high-entropy alloy, Acta Materialia, 141, pp. 59-66, (2017)