Bidirectional transformation enabled improvement in strength and ductility of metastable Fe50Mn30Co10Cr10 complex concentrated alloy under dynamic deformation

被引:16
作者
Jain, Roopam [1 ]
Parameswaran, Venkitanarayanan [2 ]
Biswas, Krishanu [1 ]
Gurao, N. P. [1 ]
机构
[1] Indian Inst Technol Kanpur, Dept Mat Sci & Engn, Kanpur 208016, India
[2] Indian Inst Technol Kanpur, Dept Mech Engn, Kanpur 208016, India
关键词
Transformation induced plasticity; High entropy alloys; Dynamic mechanical behavior; Adiabatic heating; HIGH-ENTROPY ALLOYS; STACKING-FAULT ENERGY; STRAIN-RATE; MARTENSITIC-TRANSFORMATION; MECHANICAL-PROPERTIES; BEHAVIOR; FCC; MOVEMENT; KINETICS; STEELS;
D O I
10.1016/j.ijplas.2023.103633
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
High strain rate compression experiments performed on a non-equiatomic metastable fcc + hcp Fe50Mn30Co10Cr10 high entropy alloy using split Hopkinson pressure bar setup shows improved flow stress and compression ductility compared to quasistatic deformed samples. The deformation response was characterised by the occurrence of hardening and softening stages compared to sustained strain hardening for quasistatic deformation. Detailed EBSD, BSE imaging analysis coupled with TEM shows significant bi-directional transformation (B-TRIP) and increased fcc gamma phase stability in high strain rate regime while only forward (fcc to hcp) transformation dominates with increasing fraction of hcp epsilon phase in the quasistatic regime of deformation. Bidirectional transformation aided by adiabatic heating and heterogeneous deformation in the high strain rate regime leads to optimal stress and strain partitioning between the two phases and delays the initiation of damage at the interface. The presence of concomitant strain rate hardening and improvement in ductility in the dynamic deformation regime opens up avenues for microstructural tunability to achieve simultaneous improvement in strength and ductility using the metastability paradigm in complex concentrated alloys.
引用
收藏
页数:19
相关论文
共 72 条
  • [1] Agnew SR, 2002, METALL MATER TRANS A, V33, P851, DOI 10.1007/s11661-002-1017-1
  • [2] Low cycle fatigue behaviour of non-equiatomic TRIP dual-phase Fe50Mn30Co10Cr10 high entropy alloy
    Bahadur, Fateh
    Jain, Roopam
    Biswas, Krishanu
    Gurao, N. P.
    [J]. INTERNATIONAL JOURNAL OF FATIGUE, 2022, 155
  • [3] Study of the plastic deformation mechanism of TRIP-TWIP high entropy alloys at the atomic level
    Bahramyan, Mehran
    Mousavian, Reza Taherzadeh
    Brabazon, Dermot
    [J]. INTERNATIONAL JOURNAL OF PLASTICITY, 2020, 127
  • [4] Strain Rate Sensitivity of a TRIP-Assisted Dual-Phase High-Entropy Alloy
    Basu, Silva
    Li, Zhiming
    Pradeep, K. G.
    Raabe, Dierk
    [J]. FRONTIERS IN MATERIALS, 2018, 5
  • [5] BS M., 2019, ASMT Handbook, DOI [10.1016/B978-0-12-816067-1.00002-3, DOI 10.1016/B978-0-12-816067-1.00002-3]
  • [6] Nonbasal Slip Systems Enable a Strong and Ductile Hexagonal-Close-Packed High-Entropy Phase
    Bu, Yeqiang
    Li, Ziming
    Liu, Jiabin
    Wang, Hongtao
    Raabe, Dierk
    Yang, Wei
    [J]. PHYSICAL REVIEW LETTERS, 2019, 122 (07)
  • [7] Caillard D., 2003, Thermally Activated Mechanisms in Crystal Plasticity
  • [8] Microstructural development in equiatomic multicomponent alloys
    Cantor, B
    Chang, ITH
    Knight, P
    Vincent, AJB
    [J]. MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2004, 375 : 213 - 218
  • [9] Cardellini F., 2006, THERMAL STRUCTURAL S, P1289, DOI [10.1080/01418619308225355, DOI 10.1080/01418619308225355]
  • [10] Effect of nickel addition on enhancing nano-structuring and suppressing TRIP effect in Fe40Mn40Co10Cr10 high entropy alloy during high-pressure torsion
    Chandan, Avanish Kumar
    Kishore, Kaushal
    Hung, Pham Tran
    Ghosh, Mainak
    Chowdhury, Sandip Ghosh
    Kawasaki, Megumi
    Gubicza, Jeno
    [J]. INTERNATIONAL JOURNAL OF PLASTICITY, 2022, 150