材料科学技术(英文版)2021,Vol.86Issue(27) :158-170.

Synergy effect of multi-strengthening mechanisms in FeMnCoCrN HEA at cryogenic temperature

Zhufeng He Nan Jia Hongwei Wang Haile Yan Yongfeng Shen
材料科学技术(英文版)2021,Vol.86Issue(27) :158-170.

Synergy effect of multi-strengthening mechanisms in FeMnCoCrN HEA at cryogenic temperature

Zhufeng He 1Nan Jia 1Hongwei Wang 1Haile Yan 1Yongfeng Shen2
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作者信息

  • 1. Key Laboratory for Anisotropy and Texture of Materials(Ministry of Education),School of Material Science and Engineering,Northeastern University,Shenyang 110819,China
  • 2. State Key Lab Rolling&Automat,Northeastern University,Shenyang 110819,China
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Abstract

High-entropy alloys(HEAs)have attracted great research interest owing to their good combination of high strength and ductility at both room and cryogenic temperatures.However,expensive raw mate-rials are always added to overcome the strength-ductility trade-off at low temperatures,leading to an increased production cost for the cryogenically used alloys.In this work,a series of nitrogen-doped FeMnCoCr HEAs have been processed by homogenization annealing,cold rolling and recrystallization annealing followed by water quenching.The microstructural evolution and mechanical properties of the alloys are studied systematically.The Fe49Mn30Co10Cr10N1 alloy shows excellent mechanical properties at both 293 K and 77 K.Particularly,the yield and ultimate tensile strength of 1078 and 1630 MPa are achieved at the cryogenic temperature,respectively,while a satisfactory uniform elongation of 33.5%is maintained.The ultrahigh yield strength results from the microstructure refinement caused by the acti-vation of athermal martensitic transformation and mechanical twinning that occur in the elastic regime together with the increased lattice friction due to the cryogenic environment.In the plastic regime,the dynamic Hall-Petch effect caused by twinning,martensitic transformation,and reverse transformation together with the high barrier to dislocation motion jointly contribute to the ultrahigh tensile strength.Simultaneously,the transformation induced plasticity(TRIP)and the twinning induced plasticity(TWIP)effects jointly contribute to the ductility.The design strategy for attaining superior mechanical properties at low temperatures,i.e.by adjusting stacking fault energy in the interstitial metastable HEAs,guides the development of high-performance and low-cost alloys for cryogenic applications.

Key words

High-entropy alloy/Cryogenic deformation/Nitrogen doping/Phase transformation/Twinning

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基金项目

This work was financially supported by the National Natural Science Foundation of China(51922026)

Fundamen-tal Research Funds for the Central Universities(Nos.N2002005)

Fundamen-tal Research Funds for the Central Universities(N2007011)

Liaoning Natural Science Foundation(20180510010)

and the"111 Project"(B20029)

Special thanks are due to Mr.Y.J.Liu and Mr.X.J.Guan at Northeastern University for their assistance with TEM characterizations()

出版年

2021
材料科学技术(英文版)
中国金属学会 中国材料研究学会 中国科学院金属研究所

材料科学技术(英文版)

CSTPCDCSCDSCI
影响因子:0.657
ISSN:1005-0302
参考文献量58
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