Microstructure evolution of a novel low-density Ti-Cr-Nb-V refractory high entropy alloy during cold rolling and subsequent annealing

被引:58
作者
Yurchenko, N. Yu [1 ]
Panina, E. S. [1 ]
Zherebtsov, S. V. [1 ]
Tikhonovsky, M. A. [2 ]
Salishchev, G. A. [1 ]
Stepanov, N. D. [1 ]
机构
[1] Belgorod State Univ, Lab Bulk Nanostruct Mat, Pobeda 85, Belgorod 308015, Russia
[2] NAS Ukraine, Kharkov Inst Phys & Technol, Natl Sci Ctr, UA-61108 Kharkov, Ukraine
基金
俄罗斯基础研究基金会;
关键词
High entropy alloys; Phase diagrams; Thermamechanical processing; Strengthening; Electron microscopy; Mechanical properties; PRINCIPAL ELEMENT ALLOYS; MECHANICAL-PROPERTIES; LAVES-PHASE; TENSILE PROPERTIES; SINGLE-PHASE; GRAIN-REFINEMENT; DEFORMATION; STABILITY; X=0; PARTICLES;
D O I
10.1016/j.matchar.2019.109980
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Refractory high entropy alloys represent a new class of metallic alloys attractive for high-temperature applications. However, most of the developed alloys have either low ductility at room temperature or high density. In this work, we report structure and mechanical properties of a novel non-equiatomic Ti1.89CrNbV0.56 alloy produced by vacuum arc melting. The density of the alloy was 6.17 g/cm(3). In the as-cast condition, the alloy had a single-phase bcc structure enabling room temperature deformation in compression to epsilon > 50% or cold-rolling to a thickness strain of 80%. Rolling resulted in the formation of a dislocation substructure and development of kink and shear bands. Meanwhile, microhardness measurements have revealed only a moderate increase from 396 HV in the as-cast condition to 454-469 HV after 40-80% rolling. After 80% cold rolling the alloy had yield strength of 1020 MPa, ultimate tensile strength of 1535 MPa, and elongation to fracture of 3.5%. The cold rolled alloy was annealed at 800, 1000 or 1200 degrees C for 1-100 h. Microstructural response to the annealing strongly depended on temperature. Annealing at 800 C mostly resulted in Cr-rich fcc (C15) Laves phase particles precipitation. Annealing at 1000 degrees C led to the bcc matrix recrystallization along with the precipitation of the Laves phase particles, thereby producing a fine duplex microstructure. Finally, annealing at 1200 degrees C resulted in a coarse-grained recrystallized single-phase bcc microstructure. Microhardness of the alloy lowered with an increase in the annealing temperature while the annealing time had a small effect on hardness.
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页数:12
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