Macroscopic tensile properties of AlxCoCrCuFeNi (x = 0.3 and 1) before and after heat treatment

材料科学 微观结构 极限抗拉强度 脆性 冶金 晶界 均质化(气候) 晶体结构 复合材料 结晶学 化学 生物多样性 生态学 生物
作者
Kai Kiyomiya,Yutaro Arai,Ryo Inoue
出处
期刊:Materials research express [IOP Publishing]
卷期号:10 (5): 056504-056504 被引量:1
标识
DOI:10.1088/2053-1591/acd1d5
摘要

Abstract The relationship between morphology (grain-size order) and mechanical properties of Al x CoCrCuFeNi (x = 0.3 and 1) was evaluated. Both alloys were prepared using the arc-melting method. Crystal structures with x = 0.3, face-centered cubic (FCC), and body-centered cubic (BCC) structures were observed for x = 1, the typical crystal structures of Al x CoCrCuFeNi. The alloys prepared via arc melting exhibited two different microstructures: a Cu-rich region (area I) and an equiatomic region (area II). Microstructures of the as-fabricated specimen were homogenized through heat treatment at 600 and 1000 °C for 5 h. Although the homogenization of the microstructure proceeded, areas I and II remained after the heat treatment. In particular, the area I composition was inconsistent with the predicted phase diagram. Tensile tests for these alloys revealed that the tensile strength of x = 1 (∼310–1100 MPa) is higher than that of x = 0.3 (∼320–660 MPa), whereas the fracture strain of x = 1 (∼0.03–0.09) is lower than that of x = 0.3 (∼0.06–0.26). These results indicate that the increase in Al content caused an increase in strength and brittle fracture because it also caused an increase in the formation of the BCC and B2 phases, which required higher stresses for the movement of dislocations than the FCC phase. Because the tensile properties of Al x CoCrCuFeNi are comparable to those of conventional alloys, such as Ti alloys and steels, a design with a moderate composition for stronger and tougher Al x CoCrCuFeNi is required to apply high entropy alloys to structural materials.

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