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Graphene oxide and graphene nanosheet reinforced aluminium matrix composites: Powder synthesis and prepared composite characteristics

机译:氧化石墨烯和石墨烯纳米片增强铝基复合材料:粉末合成和制备的复合材料特性

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摘要

The preparation and properties of reduced graphene oxide (rGO) and graphene nanosheets (GNSs) reinforcement of aluminium matrix nanocomposites (AMCs) are reported. For the rGO-AMCs, commercial colloidal GO was coated onto aluminium powder particles and then reduced via thermal annealing. For the GNS-AMCs, graphene exfoliated from graphite through ultrasonication and centrifugation was coated onto aluminium particle surfaces via dispersion mixing, filtering and drying. Pure aluminium and aluminium composites with various reinforcement concentrations of rGO and GNS were cold compacted into disc-shaped specimens and sintered in inert atmosphere. The mechanical properties and microstructure were studied and characterised via Vickers hardness, X-ray diffraction, density measurement, and scanning electron microscopy. The reinforcements were uniformly distributed onto the aluminium particle surfaces before and after consolidation within the composites. The relevant factors for the powder metallurgy process (compaction pressure, density, and sintering conditions) were optimised. Increased levels of increased hardness were recorded, over baseline compacted and sintered pure aluminium samples, prepared under identical experimental conditions, of 32% and 43% respectively for the 0.3 wt.% rGO-Al and 0.15 wt.% GNSs-Al composites. The process developed and presented herein provides encouraging results for realising rGO-AMC and GNS-AMC nanocomposites via low cost cold powder compaction and sintering metallurgy techniques.
机译:报道了铝基纳米复合材料(AMC)的还原氧化石墨烯(rGO)和石墨烯纳米片(GNSs)增强材料的制备及其性能。对于rGO-AMC,将商业胶体GO涂覆在铝粉颗粒上,然后通过热退火还原。对于GNS-AMC,通过分散混合,过滤和干燥,将通过超声和​​离心作用从石墨剥离的石墨烯涂覆到铝颗粒表面。将具有不同rGO和GNS增强浓度的纯铝和铝复合材料冷压成圆盘状试样,并在惰性气氛中烧结。通过维氏硬度,X射线衍射,密度测量和扫描电子显微镜对机械性能和微观结构进行了研究和表征。在复合物中固结之前和之后,增强物均匀地分布在铝颗粒表面上。优化了粉末冶金工艺的相关因素(压制压力,密度和烧结条件)。在相同实验条件下制备的经压实和烧结的纯铝基线样品中,记录到的增加的硬度增加水平分别为0.3 wt。%rGO-Al和0.15 wt。%GNSs-Al复合材料的32%和43%。本文开发和提出的方法为通过低成本冷粉末压实和烧结冶金技术实现rGO-AMC和GNS-AMC纳米复合材料提供了令人鼓舞的结果。

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  • 来源
    《Materials & design》 |2016年第3期|87-94|共8页
  • 作者单位

    Advanced Processing Technology Research Centre, Dublin City University, Dublin 9, Ireland,School of Mechanical & Manufacturing Engineering, Dublin City University, Dublin 9, Ireland;

    School of Physics, Trimly College Dublin, Dublin 2, Ireland;

    School of Physics, Trimly College Dublin, Dublin 2, Ireland;

    Advanced Processing Technology Research Centre, Dublin City University, Dublin 9, Ireland,School of Mechanical & Manufacturing Engineering, Dublin City University, Dublin 9, Ireland;

    Advanced Processing Technology Research Centre, Dublin City University, Dublin 9, Ireland,School of Mechanical & Manufacturing Engineering, Dublin City University, Dublin 9, Ireland;

    Advanced Processing Technology Research Centre, Dublin City University, Dublin 9, Ireland,Department of Mechanical Engineering and Aeronautics, City University London, UK;

    Advanced Processing Technology Research Centre, Dublin City University, Dublin 9, Ireland,School of Mechanical & Manufacturing Engineering, Dublin City University, Dublin 9, Ireland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Aluminium matrix composites (AMCs); Graphene nanosheets (GNSs); Graphene oxide (GO); Powder metallurgy (P/M); Compaction; Sintering;

    机译:铝基复合材料(AMC);石墨烯纳米片(GNS);氧化石墨烯(GO);粉末冶金(P / M);压实;烧结;

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