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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Formation of cuboidal B2 nanoprecipitates and microstructural evolution in the body-centered-cubic Al(0.7)NiCoFe(1.5)Cr(1.5 )high-entropy alloy
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Formation of cuboidal B2 nanoprecipitates and microstructural evolution in the body-centered-cubic Al(0.7)NiCoFe(1.5)Cr(1.5 )high-entropy alloy

机译:立方体(0.7)NiCOFE(1.5)Cr(1.5)高熵合金中的立方体B2纳米培养物和微结构演化的形成和微观结构演化

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The present work primarily investigated the formation of coherent cuboidal B2 nanoprecipitates in body-centered-cubic (BCC) Al0.7NiCoFe1.5Cr1.5 high-entropy alloy (HEA) and its microstructural evolution with temperature. Alloy samples were prepared by suction-cast processing and then heat-treated at different temperatures of 673-1273 K for 2 h, respectively. It was found that the coherent microstructure with cuboidal B2 nanoprecipitates in BCC matrix can be formed in the as-cast state and be stabilized up to 823 K with a particle size of 60-120 nm. Even after being heat-treated at 773 K for 1080 h, the cuboidal B2 nanoprecipitates were still stabilized without any coarsening. It was due to a moderate lattice misfit (epsilon = 0.4-0.5%) that favored the formation of coherent cuboidal B2 nanoprecipitates, resulting in a good compressive mechanical property. Meanwhile, the Fe/Cr-rich G phase appeared and dominated after the treatment at 873 K, causing heavy brittleness. The face-centered-cubic (FCC) phase appeared at 973 K and became dominant above 1173 K, which softened the alloy. In addition, the thermodynamic calculations were carried out for further understanding the microstructural evolution with temperature. The influence of microstructures constituted by different phases on mechanical properties was studied, in which high strength caused by cuboidal B2 nanoprecipitates was discussed in light of the precipitation-strengthening mechanism. (C) 2018 Elsevier B.V. All rights reserved.
机译:本作本作主要研究了体居立方(BCC)Al0.7nicofe1.5Cr1.5高熵合金(Hea)中相干立方体B2纳米甲基肽的形成及其微观结构演化。通过吸入浇铸加工制备合金样品,然后分别在673-1273k的不同温度下进行热处理2小时。发现具有BCC基质中的具有立方体B2纳米沉淀物的相干微观结构可以在浇铸状态下形成,并且粒度为60-120nm的粒度高达823k。即使在773K在1080小时的情况下进行热处理,立方体B2纳米尺寸仍然稳定而不致粗化。它是由于晶格错配(Epsilon = 0.4-0.5%),它有利于形成相干立方体B2纳米沉淀物,导致良好的压缩力学性能。同时,在873 k的治疗后,富含Fe / Cr的G相出现并主导,导致重度脆性。朝向立方(FCC)相出现在973 k处,并成为1173 k以上的主导,其软化了合金。此外,进行热力学计算,以进一步了解温度的微观结构进化。研究了不同阶段构成的微观结构对机械性能的影响,鉴于沉淀强化机制讨论了由立方体B2纳米沉淀物引起的高强度。 (c)2018年elestvier b.v.保留所有权利。

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