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Investigation of the Microstructure and Mechanical Properties of Copper-Graphite Composites Reinforced with Single-Crystal α-Al2O3 Fibres by Hot Isostatic Pressing

机译:热等静压法研究单晶α-Al2O3纤维增强铜石墨复合材料的组织和力学性能

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摘要

Single-crystal α-Al2O3 fibres can be utilized as a novel reinforcement in high-temperature composites owing to their high elastic modulus, chemical and thermal stability. Unlike non-oxide fibres and polycrystalline alumina fibres, high-temperature oxidation and polycrystalline particles boundary growth will not occur for single-crystal α-Al2O3 fibres. In this work, single-crystal α-Al2O3 whiskers and Al2O3 particles synergistic reinforced copper-graphite composites were fabricated by mechanical alloying and hot isostatic pressing techniques. The phase compositions, microstructures, and fracture morphologies of the composites were investigated using X-ray diffraction, a scanning electron microscope equipped with an X-ray energy-dispersive spectrometer (EDS), an electron probe microscopic analysis equipped with wavelength-dispersive spectrometer, and a transmission electron microscope equipped with EDS. The mechanical properties have been measured by a micro-hardness tester and electronic universal testing machine. The results show that the reinforcements were unevenly distributed in the matrix with the increase of their content and there were some micro-cracks located at the interface between the reinforcement and the matrix. With the increase of the Al2O3 whisker content, the compressive strength of the composites first increased and then decreased, while the hardness decreased. The fracture and strengthening mechanisms of the composite materials were explored on the basis of the structure and composition of the composites through the formation and function of the interface. The main strengthening mechanism in the composites was fine grain strengthening and solid solution strengthening. The fracture type of the composites was brittle fracture.
机译:单晶α-Al2O3纤维由于具有高弹性模量,化学和热稳定性,因此可以用作高温复合材料的新型增强材料。与非氧化物纤维和多晶氧化铝纤维不同,单晶α-Al2O3纤维不会发生高温氧化和多晶颗粒边界生长。在这项工作中,通过机械合金化和热等静压技术制备了单晶α-Al2O3晶须和Al2O3颗粒协同增强的铜-石墨复合材料。使用X射线衍射,配备X射线能量色散光谱仪(EDS)的扫描电子显微镜,配备波长色散光谱仪的电子探针显微镜分析法研究了复合材料的相组成,微观结构和断裂形态。装有EDS的透射电子显微镜。机械性能已通过显微硬度测试仪和电子通用测试仪进行了测量。结果表明,随着增强剂含量的增加,增强剂在基体中的分布不均匀,并且在增强剂与基体之间的界面处存在一些微裂纹。随着Al2O3晶须含量的增加,复合材料的抗压强度先增加然后降低,而硬度降低。通过界面的形成和功能,在复合材料的结构和组成的基础上,探讨了复合材料的断裂和增强机理。复合材料的主要强化机制是细晶粒强化和固溶强化。复合材料的断裂类型为脆性断裂。

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