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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 >Development of a novel Al-Cu-Ti metallic glass reinforced Al matrix composite consolidated through equal channel angular pressing (ECAP)
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Development of a novel Al-Cu-Ti metallic glass reinforced Al matrix composite consolidated through equal channel angular pressing (ECAP)

机译:通过等通道角挤压(ECAP)固结的新型Al-Cu-Ti金属玻璃增强Al基复合材料的开发

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In this study, the equal channel angular pressing (ECAP) process was used to develop a novel Al matrix composite through consolidation of pure aluminum powder having different volume fractions of Al65Cu20Ti15 metallic glass (AMG) as reinforcing particles. The structural evolution and mechanical properties of the composites were investigated. The densities of the samples were measured to evaluate the performance of the consolidation process. Structural analyses showed finely distributed reinforcing particles produced through shearing deformation, imposed during ECAP. Also, amorphous structure of reinforcement remained unchanged during ECAP at all volume fractions. The relative density of Al/10 vol% AMG composites was 97.94% which is the strong evidence for capability of ECAP to produce AMG reinforced Al matrix composites. The compressive yield strength of 184 MPa was obtained in Al/10 vol% AMG composite which showed a remarkable increase in the strength compared with pure Al. Also, the compressive yield strength of the developed composites has been compared with those estimated through the rule of mixtures. (C) 2016 Elsevier B.V. All rights reserved.
机译:在这项研究中,等通道角挤压(ECAP)工艺用于通过固结具有不同体积分数的Al65Cu20Ti15金属玻璃(AMG)作为增强粒子的纯铝粉来开发新型Al基复合材料。研究了复合材料的结构演变和力学性能。测量样品的密度以评估固结过程的性能。结构分析表明,在ECAP期间施加的剪切变形会产生分布细密的增强颗粒。同样,在所有体积分数的ECAP期间,增强材料的非晶态结构均保持不变。 Al / 10 vol%AMG复合材料的相对密度为97.94%,这是ECAP生产AMG增强Al基复合材料的能力的有力证据。在Al / 10 vol%AMG复合材料中获得了184 MPa的压缩屈服强度,与纯Al相比,强度显着提高。同样,已开发的复合材料的抗压屈服强度已与通过混合法则估算的抗压屈服强度进行了比较。 (C)2016 Elsevier B.V.保留所有权利。

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