Affiliation:
1. School of Materials Science and Engineering Shenyang University of Technology Shenyang 110870 P. R. China
2. Shenyang National Laboratory for Materials Science Institute of Metal Research CAS Shenyang 110016 P. R. China
3. School of Materials Science and Engineering University of Science and Technology of China Shenyang 110016 P. R. China
4. Institute of Applied Physics Jiangxi Academy of Sciences Nanchang 330012 P. R. China
Abstract
(Fe33Cr36Ni15Co15Ti1)100−xAlx (x = 0, 3, 5, 6, 7, 8) high‐entropy alloys (HEAs) are prepared by arc melting. The influence of Al element addition on the microstructure, mechanical properties, and anticorrosion in 3.5 wt% NaCl aqueous solution is systematically investigated. The microstructure analysis indicates that HEAs possess varying phases from face center cubic/face‐centered cubic (FCC) + sigma to FCC + body‐centered cubic (BCC) and then FCC + BCC +sigma, the last to BCC + sigma with the increase of Al content. The compressive results suggest that the Al addition exhibits a significant elevation in strength. Particularly, Al7 alloy shows a superior strength and plasticity, which presents a yield strength of 1315.3 MPa and a compressive strain over 50%. Order strengthening and coherent strengthening of nanosized phase are regarded as main strengthening effects. In addition, Al element is harmful for the corrosion resistance of (Fe33Cr36Ni15Co15Ti1)100−xAlx HEAs system, which is ascribed to the weakened passive film stability. It is also noted that pits tend to be initiated in relatively Cr‐depleted phases (FCC or B2 phase) due to the inhomogeneous elemental distribution‐induced galvanic corrosion. In spite of this, all HEAs exhibit superior corrosion resistance than that of 304SS.
Funder
National Natural Science Foundation of China
Natural Science Foundation of Jiangxi Province
Major Discipline Academic and Technical Leaders Training Program of Jiangxi Province
Subject
Condensed Matter Physics,General Materials Science
Cited by
8 articles.
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