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Improved phase stability and mechanical properties in Ni-Mn-Sn-B Alloys: Experiments and first-principles calculations.

Authors :
Xin, Xiangyang
Xu, Yangrui
Gao, Li
Feng, Yan
Hu, Shaohui
Xu, Jingxiang
Source :
Journal of Alloys & Compounds. May2024, Vol. 986, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

The impact of boron microalloying on the performance of NiMnSn shape memory alloys was investigated using a combination of simulation and experimental methods. The simulation results reveal that B atoms tend to occupy the tetrahedral interstitial positions composed of Ni and Mn. Furthermore, the doping of B atoms not only increases the lattice constant and cell volume of the alloys, but also enhances the phase transition temperature and reduces the thermal hysteresis. The doping of B can enhance the phase stability of austenite and reduce total magnetic moments in the Ni–Mn-Sn alloy. Experimental investigations were conducted on (Ni 43 Mn 47 Sn 10) 100-X B X (X=0,1.5,3) alloys, and findings corroborate the simulations, confirming that B element doping elevates the phase transition temperature, lattice constant, and cell volume, while diminishing the thermal hysteresis. Furthermore, boron microalloying contributes to improved mechanical properties. At a B doping level of 3%at, the annealed alloy compressive strength increases by 125%, reaching 578 MPa, with a fracture strain of 6.7%. However the mechanical properties of the as-cast alloy surpass those of the annealed state, with the compressive strength of the same-component cast alloy reaching 1080 MPa, and a fracture strain of 7.9%, marking an 87% improvement over the annealed state. • B atoms tend to occupy tetrahedral gap positions composed of Ni and Mn. • B atoms doping reduces the stability of austenite phase, increases the phase transition trmperature dna decreases the themal hysteresis. • The magnetic moment of the system decreases due to B atom doping. • Boron microalloying significantly enhances the material's compressive strength. • The as-cast alloy exhibits significantly higher compressive fracture strength compared to the annealed state. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09258388
Volume :
986
Database :
Academic Search Index
Journal :
Journal of Alloys & Compounds
Publication Type :
Academic Journal
Accession number :
176195601
Full Text :
https://doi.org/10.1016/j.jallcom.2024.174090