Deformation based additive manufacturing of a metastable high entropy alloy via Additive friction stir deposition

被引:44
作者
Agrawal, Priyanshi [1 ,2 ,3 ]
Haridas, Ravi Sankar [1 ,3 ,4 ]
Agrawal, Priyanka [1 ,3 ]
Mishra, Rajiv S. [1 ,2 ,3 ]
机构
[1] Univ North Texas, Dept Mat Sci & Engn, Denton, TX 76203 USA
[2] Univ North Texas, Ctr Agile & Adapt Addit Mfg CAAAM, Denton, TX 76207 USA
[3] Univ North Texas, Adv Mat & Mfg Proc Inst AMMPI, Denton, TX 76207 USA
[4] Univ North Texas, Dept Mech Engn, Denton, TX 76203 USA
关键词
Additive friction stir deposition; Transformation induced plasticity; High entropy alloys; Microstructural evolution; Dual phase recrystallization kinetics;
D O I
10.1016/j.addma.2022.103282
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Additive friction stir deposition (AFSD) is a novel solid-state additive manufacturing process which offers unique capability of producing 3-D parts with no solidification related defects and having homogeneous, equiaxed microstructure. However, to fulfill the full potential of the process for structural applications, AFSD needs intense process optimization for a wide range of alloys with excellent mechanical properties. The present study explored AFSD of a novel metastable high entropy alloy (HEA), CS-HEA (Fe40Mn20Co20Cr15Si5 (at%)), enabled with transformation and twinning induced plasticity during deformation. Intense shear deformation at elevated temperature and strain rate during AFSD led to the operation of restoration mechanisms such as recovery, recrystallization, and grain growth which resulted in refined grains with excellent strength and work hardenability. The average grain size for as-deposited CS-HEA is 3.0 +/- 0.5 mu m, and the average tensile yield strength of as-deposited CS-HEA is 450 +/- 20 MPa. The microstructural variation and mechanical response of the alloy as a function of process parameters were correlated to the AFSD process variables, phase transformation, and recrystallization kinetics. Further, the interaction between recrystallization kinetics and transformation kinetics on microstructural evolution of the material was explored. Additionally, the microstructure and stacking fault energy of the alloy were used to predict the mechanical response of the deposited material using a five parameter work hardening model.
引用
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页数:11
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