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Microstructural Evolution and Mechanical Response of Equal-Channel Angular Extrusion-Processed AI-40Zn-2Cu Alloy

机译:等通道角挤压加工AI-40Zn-2Cu合金的组织演变和力学响应

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摘要

Microstructural evolution, tensile properties, and impact toughness of an aluminum-zinc-copper (Al-40Zn-2Cu) alloy subjected to repetitive equal-channel angular extrusion (ECAE) up to four passes following either route A or route B_C were investigated. The experimental results reveal that the ECAE eliminated as-cast dendritic microstructure along with casting defects such as microporosities almost completely. The ECAE-processed samples consisted of mostly elongated microconstituents via route A and equiaxed microconstituents via route B_C. The high stresses imposed in ECAE lead to the fragmentation of the copper-rich 9 phase into smaller particles with significant fragmentation occurring in the first pass and additional breaking in the subsequent passes in both routes. The ECAE processing simultaneously increased both the strength and ductility of the alloy as compared to the as-cast state, regardless of the processing route and number of passes. The deformation behavior of as-cast Al-40Zn-2Cu alloy has changed from brittle to ductile mode after ECAE due to the microstructural refinement, deformation-induced homogenization, and reduction of porosities. The limited impact toughness of as-cast alloy was significantly improved by multipass ECAE, especially in route A.
机译:研究了在路径A或路径B_C下经过四次重复等通道角挤压(ECAE)的铝锌铜(Al-40Zn-2Cu)合金的组织演变,拉伸性能和冲击韧性。实验结果表明,ECAE几乎完全消除了铸态的树枝状微结构以及铸造缺陷(如微孔)。经ECAE处理的样品主要由通过途径A的细长的微成分和通过途径B_C的等轴的微成分组成。 ECAE中施加的高应力会导致富铜9相碎裂成较小的颗粒,在这两个路线的第一道工序中都会发生明显的碎裂,而在随后的道工序中还会发生其他断裂。与铸态相比,ECAE工艺同时提高了合金的强度和延展性,而与工艺路线和通过次数无关。由于微结构的细化,变形引起的均质化和孔隙率的降低,铸造的Al-40Zn-2Cu合金的变形行为在ECAE后已从脆性转变为延性模式。多道次ECAE大大改善了铸态合金的有限冲击韧性,尤其是在路线A中。

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