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Microstructural features and mechanical properties of Al 5083/SiC_p metal matrix nanocomposites produced by high energy ball milling and spark plasma sintering

机译:高能球磨和放电等离子烧结制备的Al 5083 / SiC_p金属基纳米复合材料的显微组织和力学性能

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摘要

Al 5083 alloy powder with 10 wt.% (~8.43 vol.%) of silicon carbide (SiC_p) nanoparticulates having size of ~20nm were milled using a high-energy planetary ball mill to produce Al 5083/10wt.% SiC_p (Al 5083/SiC_p) nanocomposite. Subsequently, the milled powders were consolidated and sintered by employ ing spark plasma sintering (SPS) technique in order to attain the near theoretical densification while retaining the nanostructure of Al 5083 matrix embedded with uniformly distributed SiC_p. High resolu tion transmission microscopy (HR-TEM) analysis revealed the grain morphology and grain size of the Al 5083 matrix along with the interfacial microstructure between Al 5083 matrix and SiC_p particulates. The crystallite size of ball milled Al 5083 matrix was observed to be ~25 nm and was coarsened up to 30 nm after rapid consolidation and sintering using SPS. Compressive strength and elastic modulus of Al 5083/SiCp metal matrix nanocomposites was significantly increased to that of the un-reinforced Al 5083 alloy. Nanoindentation measurements on these nanocomposites demonstrated the hardness of ~280 HV with an elastic modulus of 126 GPa.
机译:使用高能行星式球磨机将具有10 wt。%(〜8.43 vol。%)尺寸为〜20nm的碳化硅(SiC_p)纳米颗粒的Al 5083合金粉进行研磨,以生产Al 5083 / 10wt。%SiC_p(Al 5083 / SiC_p)纳米复合材料。随后,通过使用火花等离子体烧结(SPS)技术将研磨后的粉末固结和​​烧结,以便在保持嵌入有均匀分布SiC_p的Al 5083基体的纳米结构的同时,达到接近理论的致密化。高分辨率透射显微镜(HR-TEM)分析揭示了Al 5083基体的晶粒形态和晶粒尺寸以及Al 5083基体与SiC_p颗粒之间的界面微观结构。观察到球磨的Al 5083基体的微晶尺寸为〜25 nm,并在使用SPS快速固结和烧结后粗化到30 nm。 Al 5083 / SiCp金属基纳米复合材料的抗压强度和弹性模量明显高于未增强的Al 5083合金。在这些纳米复合材料上进行的纳米压痕测量表明,硬度约为280 HV,弹性模量为126 GPa。

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