Revealing the Strengthening and Toughening Mechanisms of Al-CuO Composite Fabricated Via In-Situ Solid-State Reaction

X. Rong, Dongdong Zhao, C. He, C. Shi, E. Liu, N. Zhao
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引用次数: 51

Abstract

Abstract Due to native deficiency of the interfacial mismatch between Al2O3 and Al-melt, as well as micron-Al2O3 segregation at matrix grain boundaries (GBs), achieving both high strength and fracture toughness has been the long-lasting challenge for Al-CuO composite fabricated by conventional casting. Herein, we report a novel manufacturing of Al-CuO composite via shift-speed ball-milling (SSBM) of Al-5 wt.% CuO powders and afterwards subjected to hot-pressing (HP) as well as heat treatment. Comprehensive characterization shows that in-situ generation of the two types of Al2O3 with intragranular distribution, including δ*-Al2O3 particles (~200 nm) and γ-Al2O3 whiskers (length of ~150 nm, thickness of ~20 nm), was governed by a diffusion-assisted nucleation-regime ascribing to the intense thermal effect of Al-CuO reaction. The size and spatial distribution of Al2O3 were emphasized to address their contribution to the high mechanical performance of the composite, which exhibits a tensile strength of ~481 MPa and fracture elongation of ~16.8 %. Meanwhile, the toughening mechanism of present Al-CuO composite was rationalized on basis of the "dislocation punched zone" and "plastic zone" affected by Al2O3. Both the theoretical analysis and fracture morphology support a reinforcements-matrix interface failure mechanism and the non-uniform distribution of Al2O3 consisting alternant "rich/poor zones" can markedly contribute to the high toughness. The present findings may provide a promising strategy to achieve an intragranular distribution of nano-sized reinforcements in Al-metal oxides composites, which enables increasing strength and ductility of the metal matrix.
原位固相反应制备Al-CuO复合材料强化增韧机理研究
由于Al2O3与al熔体界面失配的先天缺陷以及基体晶界处微米级Al2O3的偏析,实现高强度和高断裂韧性一直是传统铸造Al-CuO复合材料长期面临的挑战。在此,我们报告了一种新的Al-CuO复合材料的制造方法,通过Al-5 wt.%的CuO粉末的变速球磨(SSBM),然后进行热压(HP)和热处理。综合表征表明,由于Al-CuO反应的强烈热效应,原位生成的两种类型的Al2O3晶粒内分布为δ*-Al2O3颗粒(~200 nm)和γ-Al2O3晶须(~ 150 nm, ~20 nm)均受扩散辅助成核机制的控制。复合材料的抗拉强度为481 MPa,断裂伸长率为16.8%,Al2O3的尺寸和空间分布对复合材料的高力学性能有重要作用。同时,根据Al2O3对Al-CuO复合材料的“位错冲孔区”和“塑性区”的影响,对该复合材料的增韧机理进行了合理化分析。理论分析和断口形貌均支持强化-基体界面破坏机制,且Al2O3的非均匀分布形成“富贫区”交替分布是高韧性的重要原因。目前的研究结果可能为在al -金属氧化物复合材料中实现纳米级增强的晶内分布提供了一种有希望的策略,从而提高了金属基体的强度和延展性。
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