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首页> 外文期刊>Journal of Composites Science >Study of Nano-Mechanical, Electrochemical and Raman Spectroscopic Behavior of Al6061-SiC-Graphite Hybrid Surface Composite Fabricated through Friction Stir Processing
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Study of Nano-Mechanical, Electrochemical and Raman Spectroscopic Behavior of Al6061-SiC-Graphite Hybrid Surface Composite Fabricated through Friction Stir Processing

机译:搅拌摩擦法制备的Al6061-SiC-石墨混杂表面复合材料的纳米机械,电化学和拉曼光谱行为研究

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摘要

Aluminium-based hybrid metal grid composites (MMC) are extensively utilized in automobile applications (engine cylinders, pistons, etc.) as they exhibit a fantastic blend of properties. Here, a detailed study of nano-mechanical, electrochemical and Raman spectroscopic behavior of friction stir processed Al6061-SiC-graphite hybrid surface composite is presented. The effect of various tool rotational speeds was evaluated along with the monitoring of variation in axial force. Microstructural changes with various tool rotational speeds are studied by using a scanning electron microscope. Raman spectroscopy and X-Ray diffraction studies are used for the spectroscopic characterization of the fabricated hybrid and mono surface composites. Residual stresses and various crystal structure disorders of reinforcement result in the significant change in intensity and a considerable shift in Raman peak positions. The nano-mechanical behavior of the fabricated composite with various reinforcements and tool rotational speeds are analyzed by using nano-indentation. The nano-mechanical behavior of hybrid composite fabricated with an optimum set of processing parameters is superior to mono composites fabricated with the same processing parameters. Also, the electrochemical behavior of the fabricated composites is studied by linear potentiodynamic polarization test. The Al6061-SiC-graphite hybrid surface composite reveals excellent nano-mechanical and electrochemical behavior when fabricated with an optimum set of processing parameters. The tool rotational speed has a pronounced effect on the dispersion of agglomerates and grain refinement of the matrix material. The processing parameters extensively affect the Raman spectroscopic behavior of the hybrid composite. The hybrid surface composite shows better corrosion resistance than the mono composites when fabricated with an optimum set of processing parameters. Reduced intergranular as well as interfacial corrosion pits in hybrid composites increased its resistance to corrosion.
机译:铝基混合金属网格复合材料(MMC)具有出色的性能,因此在汽车应用(发动机汽缸,活塞等)中得到了广泛应用。在此,详细研究了搅拌摩擦加工的Al6061-SiC-石墨混杂表面复合材料的纳米力学,电化学和拉曼光谱行为。评估了各种工具转速的影响以及对轴向力变化的监控。通过使用扫描电子显微镜研究了各种工具转速下的微观结构变化。拉曼光谱和X射线衍射研究被用于制造的杂化和单表面复合材料的光谱表征。残余应力和增强的各种晶体结构异常导致强度发生重大变化,拉曼峰位置发生明显变化。通过使用纳米压痕分析了具有各种增强材料和工具转速的复合材料的纳米力学行为。具有最佳工艺参数集的混合复合材料的纳米力学性能优于具有相同工艺参数的单层复合材料。此外,通过线性电位动力学极化试验研究了所制备复合材料的电化学行为。当使用一组最佳的加工参数进行制造时,Al6061-SiC-石墨混杂表面复合材料具有出色的纳米机械和电化学性能。工具转速对附聚物的分散和基体材料的晶粒细化具有显着影响。加工参数广泛影响杂化复合材料的拉曼光谱行为。当使用一组最佳的加工参数进行制造时,杂化表面复合材料的抗腐蚀性比单复合材料更好。杂化复合材料中减少的晶间和界面腐蚀坑增加了其耐腐蚀性。

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