Simultaneous Strength-Ductility Enhancement of a Nano-Lamellar AlCoCrFeNi2.1 Eutectic High Entropy Alloy by Cryo-Rolling and Annealing
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N. Tsuji | S. Sheikh | P. P. Bhattacharjee | I. Clark | T Bhattacharjee | I S Wani | S Sheikh | I T Clark | T Okawa | S Guo | P P Bhattacharjee | N Tsuji | I. S. Wani | T. Bhattacharjee | P. Bhattacharjee | T. Okawa | I. Wani | S. Guo | Toshiro Okawa | Sheng Guo
[1] Wei Liu,et al. High Tensile Ductility and Strength in Bulk Nanostructured Nickel , 2008 .
[2] Peter V Liddicoat,et al. Nanostructural hierarchy increases the strength of aluminium alloys. , 2010, Nature communications.
[3] Yong Zhang,et al. Microstructural features and tensile behaviors of the Al0.5CrCuFeNi2 high-entropy alloys by cold rolling and subsequent annealing , 2015 .
[4] J. Yeh,et al. Effect of heavy cryo-rolling on the evolution of microstructure and texture during annealing of equiatomic CoCrFeMnNi high entropy alloy , 2016 .
[5] D. G. Morris,et al. The role of controlled recrystallization treatments on ductility of Fe3Al alloys , 1994 .
[6] Xin Sun,et al. Stress and Strain Partitioning of Ferrite and Martensite during Deformation , 2009 .
[7] Xiaolei Wu,et al. Synergetic Strengthening by Gradient Structure , 2014, Heterostructured Materials.
[8] Dierk Raabe,et al. Integrated experimental-simulation analysis of stress and strain partitioning in multiphase alloys , 2014 .
[9] Jien-Wei Yeh,et al. Alloy Design Strategies and Future Trends in High-Entropy Alloys , 2013 .
[10] Xiaolei Wu,et al. Heterogeneous materials: a new class of materials with unprecedented mechanical properties , 2017, Heterostructured Materials.
[11] I. Beyerlein,et al. Emergence of stable interfaces under extreme plastic deformation , 2014, Proceedings of the National Academy of Sciences.
[12] Toshihiro Tsuchiyama,et al. Effect of the martensite distribution on the strain hardening and ductile fracture behaviors in dual-phase steel , 2014 .
[13] Fuping Yuan,et al. Extraordinary strain hardening by gradient structure , 2014, Proceedings of the National Academy of Sciences.
[14] Huajian Gao,et al. Evading the strength–ductility trade-off dilemma in steel through gradient hierarchical nanotwins , 2014, Nature Communications.
[15] D. Pierce,et al. Effect of recrystallization on room temperature tensile properties of an Fe3Al-based alloy , 1993 .
[16] Yonghao Zhao,et al. Simultaneously Increasing the Ductility and Strength of Nanostructured Alloys , 2006 .
[17] John J. Lewandowski,et al. High-entropy Al 0.3 CoCrFeNi alloy fibers with high tensile strength and ductility at ambient and cryogenic temperatures , 2017 .
[18] M. Gao. Progress in High-Entropy Alloys , 2014, JOM.
[19] C. Tasan,et al. Interstitial atoms enable joint twinning and transformation induced plasticity in strong and ductile high-entropy alloys , 2017, Scientific Reports.
[20] N. Stepanov,et al. Effect of cryo-deformation on structure and properties of CoCrFeNiMn high-entropy alloy , 2015 .
[21] F. Yuan,et al. Back stress strengthening and strain hardening in gradient structure , 2016 .
[22] Dierk Raabe,et al. A novel, single phase, non-equiatomic FeMnNiCoCr high-entropy alloy with exceptional phase stability and tensile ductility , 2014 .
[23] 张勇. Microstructural features and tensile behaviors of the Al0.5CrCuFeNi2 high-entropy alloys by cold rolling and subsequent annealing , 2015 .
[24] Zhe Zhang,et al. Improvement of mechanical properties in SUS304L steel through the control of bimodal microstructure characteristics , 2014 .
[25] Sheng Guo,et al. Ultrafine-Grained AlCoCrFeNi2.1 Eutectic High-Entropy Alloy , 2016 .
[26] Robert O. Ritchie,et al. Nanoscale origins of the damage tolerance of the high-entropy alloy CrMnFeCoNi , 2015, Nature Communications.
[27] R. Ritchie. The conflicts between strength and toughness. , 2011, Nature materials.
[28] Jian Lu,et al. Gradient twinned 304 stainless steels for high strength and high ductility , 2016 .
[29] J. Yeh,et al. High-Entropy Alloys: A Critical Review , 2014 .
[30] F. Yuan,et al. Heterogeneous lamella structure unites ultrafine-grain strength with coarse-grain ductility , 2015, Proceedings of the National Academy of Sciences.
[31] S. Nutt,et al. Deformation behavior of bimodal nanostructured 5083 Al alloys , 2005 .
[32] Hui Wang,et al. Strengthening austenitic steels by using nanotwinned austenitic grains , 2012 .
[33] K. Dahmen,et al. Microstructures and properties of high-entropy alloys , 2014 .
[34] T. Nieh,et al. An assessment on the future development of high-entropy alloys: Summary from a recent workshop , 2015 .
[35] K. Ameyama,et al. The Development of High Performance Ti-6Al-4V Alloy via a Unique Microstructural Design with Bimodal Grain Size Distribution , 2015, Metallurgical and Materials Transactions A.
[36] E. Lavernia,et al. Strain rate dependence of properties of cryomilled bimodal 5083 Al alloys , 2006 .
[37] N. Tao,et al. Revealing Extraordinary Intrinsic Tensile Plasticity in Gradient Nano-Grained Copper , 2011, Science.
[38] K. Lu,et al. Strengthening Materials by Engineering Coherent Internal Boundaries at the Nanoscale , 2009, Science.
[39] I. Baker,et al. Recrystallization of a novel two-phase FeNiMnAlCr high entropy alloy , 2016 .
[40] Oleg N. Senkov,et al. Microstructure and properties of a refractory high-entropy alloy after cold working , 2015 .
[41] R. Ritchie,et al. A fracture-resistant high-entropy alloy for cryogenic applications , 2014, Science.
[42] N. Jones,et al. High-entropy alloys: a critical assessment of their founding principles and future prospects , 2016 .
[43] G. Pharr,et al. An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments , 1992 .
[44] C. Tasan,et al. Metastable high-entropy dual-phase alloys overcome the strength–ductility trade-off , 2016, Nature.
[45] Gang Liu,et al. Formation of nanostructured surface layer on AISI 304 stainless steel by means of surface mechanical attrition treatment , 2003 .
[46] K. Ameyama,et al. Harmonic-structured copper: performance and proof of fabrication concept based on severe plastic deformation of powders , 2014, Journal of Materials Science.
[47] F. J. Humphreys. Chapter 12 – Recrystallization Textures , 2004 .
[48] T. Shun,et al. Nanostructured High‐Entropy Alloys with Multiple Principal Elements: Novel Alloy Design Concepts and Outcomes , 2004 .
[49] Fenghua Zhou,et al. High tensile ductility in a nanostructured metal , 2002, Nature.
[50] C. Aring,et al. A CRITICAL REVIEW , 1939, Journal of neurology and psychiatry.
[51] Ping Jiang,et al. Nanodomained Nickel Unite Nanocrystal Strength with Coarse-Grain Ductility , 2015, Scientific Reports.
[52] Sheng Guo,et al. Directly cast bulk eutectic and near-eutectic high entropy alloys with balanced strength and ductility in a wide temperature range , 2017 .
[53] N. Tsuji,et al. Cold-rolling and recrystallization textures of a nano-lamellar AlCoCrFeNi2.1 eutectic high entropy alloy , 2017 .
[54] Xiaoxu Huang,et al. Revealing the Maximum Strength in Nanotwinned Copper , 2009, Science.
[55] J. Yeh,et al. Effect of temperature on mechanical properties of Al0.5CoCrCuFeNi wrought alloy , 2010 .
[56] Huijun Kang,et al. A Promising New Class of High-Temperature Alloys: Eutectic High-Entropy Alloys , 2014, Scientific Reports.
[57] N. Tsuji,et al. Tailoring nanostructures and mechanical properties of AlCoCrFeNi2.1 eutectic high entropy alloy using thermo-mechanical processing , 2016 .
[58] J. Narayan,et al. Mechanical properties of copper/bronze laminates: Role of interfaces , 2016 .
[59] F. J. Humphreys,et al. Recrystallization and Related Annealing Phenomena , 1995 .