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Research Article

Effect of carbon on microstructure and mechanical properties of Co-free medium-entropy alloys

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Pages 1237-1244 | Received 04 Sep 2022, Accepted 27 Dec 2022, Published online: 05 Jan 2023

References

  • Pang JY, Zhang HW, Zhang L, et al. A ductile Nb40Ti25Al15V10Ta5Hf3W2 refractory high entropy alloy with high specific strength for high-temperature applications. Mater Sci Eng A. 2022;831:142290.
  • Zhang MD, Zhang LJ, Fan JT, et al. Novel Co-free CrFeNiNb0.1Ti high-entropy alloys with ultra high hardness and strength. Mater Sci Eng A. 2019;764:138212.
  • Arif, ZU, Khalid MY, Rehman EU. Laser-aided additive manufacturing of high entropy alloys: processes, properties, and emerging applications. J Manuf Process. 2022;78:131–171.
  • Ding ZY, He QF, Wang Q, et al. Superb strength and high plasticity in laves phase rich eutectic medium-entropy-alloy nanocomposites. Int J Plasticity. 2018;106:57–72.
  • He ZF, Jia N, Yan HL, et al. Multi-heterostructure and mechanical properties of N-doped FeMnCoCr high entropy alloy. Int J Plasticity. 2021;139:102965.
  • Shah N, Rahul MR, Bysakh S, et al. Microstructure stability during high temperature deformation of CoCrFeNiTa eutectic high entropy alloy through nano-scale precipitation. Mater Sci Eng A. 2021;824:141793.
  • Zhao YL, Yang T, Li YR, et al. Superior high-temperature properties and deformation-induced planar faults in a novel L12-strengthened high-entropy alloy. Acta Mater. 2020;188:517–527.
  • Chou YL, Wang YC, Yeh JW, et al. Pitting corrosion of the high-entropy alloy Co1.5CrFeNi1.5Ti0.5Mo0.1 in chloride-containing sulphate solutions. Corr Sci. 2010;52(10):3481–3491.
  • Arif ZU, Khalid MY, Rehman EU, et al. A review on laser cladding of high-entropy alloys, their recent trends and potential applications. J Manuf Process. 2021;68:225–273.
  • Seol JB, Bae JW, Li Z, et al. Boron doped ultrastrong and ductile high-entropy alloys. Acta Mater. 2018;151:366–376.
  • Senkov ON, Wilks GB, Miracle DB, et al. Refractory high-entropy alloys. Intermetallics. 2010;18(9):1758–1765.
  • Schneider M, Laplanche G. Effects of temperature on mechanical properties and deformation mechanisms of the equiatomic CrFeNi medium-entropy alloy. Acta Mater. 2021;204:116470.
  • Zhao YJ, Qiao JW, Ma SG, et al. A hexagonal close-packed high-entropy alloy: the effect of entropy. Mater Des. 2016;96:10–15.
  • Cantor B, Chang ITH, Knight P, et al. Microstructural development in equiatomic multicomponent alloys. Mater Sci Eng A. 2004;375-377:213–218.
  • Ma ZC, Zhang W, Zhao HW, et al. Enhanced strength and slightly reduced ductility in a high entropy alloy via cold rolling and annealing. J Alloys Compd. 2020;817:152709.
  • Chang H, Zhang TW, Ma S, et al. Novel Si-added CrCoNi medium entropy alloys achieving the breakthrough of strength-ductility trade-off. Mater Des. 2021;197:109202.
  • Zhang DD, Zhang JY, Kuang J, et al. The B2 phase-driven microstructural heterogeneities and twinning enable ultrahigh cryogenic strength and large ductility in NiCoCr-based medium-entropy alloy. Acta Mater. 2022;233:117981.
  • Wang ZW, Baker I, Cai ZH, et al. The effect of interstitial carbon on the mechanical properties and dislocation substructure evolution in Fe40.4Ni11.3Mn34.8Al7.5Cr6 high entropy alloys. Acta Mater. 2016;120:228–239.
  • Wang ZW, Baker I. Interstitial strengthening of a fcc FeNiMnAlCr high entropy alloy. Mater Lett. 2016;180:153–156.
  • Sun SJ, Tian YZ, Lin HR, et al. Enhanced strength and ductility of bulk CoCrFeMnNi high entropy alloy having fully recrystallized ultrafine-grained structure. Mater Des. 2017;133:122–127.
  • Otto F, Dlouhý A, Somsen C, et al. The influences of temperature and microstructure on the tensile properties of a CoCrFeMnNi high-entropy alloy. Acta Mater. 2013;61(15):5743–5755.
  • He JY, Wang H, Huang HL, et al. A precipitation-hardened high-entropy alloy with outstanding tensile properties. Acta Mater. 2016;102:187–196.
  • Zhang L, Zhou Y, Jin X, et al. Precipitation-hardened high entropy alloys with excellent tensile properties. Mater Sci Eng A. 2018;732:186–191.
  • Xiong F, Fu RD, Li YJ, et al. Influences of nitrogen alloying on microstructural evolution and tensile properties of CoCrFeMnNi high-entropy alloy treated by cold-rolling and subsequent annealing. Mater Sci Eng A. 2020;787:139472.
  • Peng J, Li ZY, Fu LM, et al. Carbide precipitation strengthening in fine-grained carbon-doped FeCoCrNiMn high entropy alloy. J Alloys Compd. 2019;803:491–498.
  • Wang HY, Wei R, Li XM, et al. Nanostructured amorphous Fe29Co27Ni23Si9B12 high-entropy-alloy: an efficient electrocatalyst for oxygen evolution reaction. J Mater Sci Technol. 2021;68:191–198.
  • Tang J, Xu JL, Ye ZG, et al. Synthesis of flower-like cobalt, nickel phosphates grown on the surface of porous high entropy alloy for efficient oxygen evolution. J Alloys Compd. 2021;885:160995.
  • Li XL, Hao XX, Jin C, et al. The determining role of carbon addition on mechanical performance of a non-equiatomic high-entropy alloy. J Mater Sci Technol. 2022;110:167–177.
  • Li JB, Gao B, Wang YT, et al. Microstructures and mechanical properties of nano carbides reinforced CoCrFeMnNi high entropy alloys. J Alloys Compd. 2019;792:170–179.
  • Bai L, Wang YZ, Yan Y, et al. Effect of carbon on microstructure and mechanical properties of Fe36Mn36Ni9Cr9Al10 high-entropy alloys. Mater Sci Technol. 2020;36(17):1851–1860.
  • Arif ZU, Khalid MY, Rashid AA, et al. Laser deposition of high-entropy alloys: A comprehensive review. Opt Laser Technol. 2022;145:107447.
  • Takeuchi A, Inoue A. Classification of bulk metallic glasses by atomic size difference, heat of mixing and period of constituent elements and its application to characterization of the main alloying element. Mater Trans. 2006;46(12):2817–2829.
  • Zhang LJ, Yu PF, Fan JT, et al. Investigating the micro and nanomechanical properties of CoCrFeNi-C high-entropy alloys containing eutectic carbides. Mater Sci Eng A. 2020;796:140065.
  • Chen LB, Wei R, Tang K, et al. Heavy carbon alloyed FCC-structured high entropy alloy with excellent combination of strength and ductility. Mater Sci Eng A. 2018;716:150–156.
  • Huang D, Zhuang YX, Wang CH. Advanced mechanical properties obtained via accurately tailoring stacking fault energy in Co-rich and Ni-depleted CoxCr33Ni67-x medium-entropy alloys. Sc Mater. 2022;207:114269.
  • Jarlöv A, Ji WM, Zhu ZG, et al. Molecular dynamics study on the strengthening mechanisms of Cr–Fe–Co–Ni high-entropy alloys based on the generalized stacking fault energy. J Alloys Compd. 2022;905:164137.

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