Abstract In this study, Ni₄₁₋₂ₓTi₄₉Cu₇₊ₓAg₃₊ₓ (x = 0, 1, 2, 3) shape memory quaternary alloys were synthesized by arc melting and their thermal, structural and mechanical properties were extensively investigated. Systemically, investigations have been carried out on the phase transformation behavior, thermodynamic properties, microstructure and oxidation resistance of the alloys with increasing Cu and Ag content. Differential Scanning Calorimetry (DSC) showed the shape memory effects of all alloys at low temperature. The transformation temperatures increased with increasing Cu and Ag concentrations. Thermodynamic analysis showed that Gibbs free energy trends and entropy were attributed to increased thermal stability at higher doping levels. XRD analysis confirmed the presence of martensitic (β19, β19′) and intermetallic Ti2(NiCu) phases and grain refinement was found in higher doped samples. Microhardness measurements showed more homogeneous and stabilized microstructures at increasing doping, while SEM imaging showed that the hardness increased significantly. In addition, thermogravimetric analysis showed that Cu and Ag slightly compromised the oxidation resistance due to destabilization of the passive oxide layers. These results suggest that varying the Cu and Ag content in NiTi-based alloys is an effective method to improve mechanical strength and thermomechanical performance in advanced engineering applications.
Tatar et al. (Wed,) studied this question.
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