Computational design of ductility and phase stability in W-Ti-V-Cr refractory multiprincipal element alloys for fusion applications. [PDF]
Pitike KC +3 more
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Influence of Increased TaNbV on the Microstructure, Mechanical Properties, and Energy Release Characteristics of High-Entropy Alloy HfZrTi(TaNbV)<sub>x</sub>. [PDF]
Chen C +8 more
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Deformable Eutectic Alloy With Near-Theoretical Yield Strength via Hierarchical Nanoscale Multiphases and Sessile Defects. [PDF]
Luo Y +10 more
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Strength-plasticity synergy from ambient to high temperature via gradient-ordering in boride-reinforced WTaV medium-entropy alloy. [PDF]
Sun B +8 more
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Artificial Neural Network Approach for Hardness Prediction in High-Entropy Alloys. [PDF]
Nchekwube M +4 more
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Related searches:
Refractory high-entropy alloys
Intermetallics, 2010Abstract Two refractory high-entropy alloys with near-equiatomic concentrations, W–Nb–Mo–Ta and W–Nb–Mo–Ta–V, were produced by vacuum arc melting. Despite containing many constituents both alloys have a single-phase body-centered cubic (BCC) structure.
O.N. Senkov +4 more
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Senary refractory high entropy alloy MoNbTaTiVW
Materials Science and Technology, 2015The design approach and validation of a single phase senary refractory high entropy alloy (HEA) MoNbTaTiVW was presented in the present study. The design approach was to combine phase diagram inspection of available binary and ternary systems and Calculation of Phase Diagrams prediction.
B. Zhang +4 more
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Superior High‐Temperature Strength in a Supersaturated Refractory High‐Entropy Alloy
Advanced Materials, 2021AbstractRefractory high‐entropy alloys (RHEAs) show promising applications at high temperatures. However, achieving high strengths at elevated temperatures above 1173K is still challenging due to heat softening. Using intrinsic material characteristics as the alloy‐design principles, a single‐phase body‐centered‐cubic (BCC) CrMoNbV RHEA with high ...
Rui Feng +9 more
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