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Microstructure and mechanical property study of cu-graphite metal matrix composite prepared by powder metallurgy route

机译:粉末冶金法制备铜-石墨金属基复合材料的组织和力学性能研究

摘要

Copper–graphite metal matrix composites possess the properties of copper, i.e. excellent thermal and electrical conductivities, and properties of graphite, i.e. solid lubricating and small thermal expansion coefficient. Copper matrix containing graphite are widely used as brushes, and bearing materials in many applications due to the excellent thermal and electrical conductivities, and the favorable self-lubricating performance. The addition of solid lubricant particles into a metal matrix improves not only the anti-friction properties, but also wear and friction properties. In the present investigation, attempts have been made for the fabrication of Cu-graphite MMC by conventional and spark plasma sintering (SPS) techniques. Copper-graphite MMCs were fabricated by mixing 1, 3, 5, and 10 vol. % of graphite powder into copper powder followed by conventional powder metallurgy route. The composite powder mixture were cold compacted by uni-axial press and then sintered in tubular furnace using argon gas. In another set of experiments, Cu-1 vol. % graphite and Cu- 5 vol. % MMCs were fabricated by spark plasma sintering technique at 700C under vacuum for 5 minutes. The MMCs were characterised by x-ray diffraction (XRD) and scanning electron microscopy (SEM). Different mechanical properties like density, bulk hardness and wear study were also conducted. XRD spectra show the presence of Cu, graphite and Cu2O peaks which shows that no interaction between Cu and graphite takes place during fabrication. The presence of a weak peak of Cu2O proves that slight oxidation of Cu takes place during conventional sintering of MMCs. However, no peak of Cu2O is visible for SPS as it was conducted under vacuum. It has been found that addition of graphite into copper does not result in much improvement in hardness due to the soft nature of graphite. However, 90 and 97 % of theoretical density have been obtained for conventional sintered and SPS samples respectively. Maximum Vickers hardness value of around 100 has been achieved for Cu-1 vol. % graphite MMC when it is fabricated by SPS. However, a hardness value of 65 has been obtained for the same composite when it is fabricated by conventional sintering at 900C for 1 hour. To study the effect of milling, Cu-1vol. % graphite and Cu-5 vol. % graphite powder mixture were milled for various time periods and then sintered. It has been found that hardness increases with milling. The micrographs of Cu-graphite reflect the clean interface and good compatibility between matrix and reinforcement. It has also been found that graphite particles are uniformly distributed into copper matrix. From wear study, it is concluded that the wear resistance of the composite increases with increase in graphite content due to the lubricating properties of graphite. It has also been found that wear depth decreases with increase in graphite content. SPS sintered samples show higher wear resistance than conventional sintered samples. It has also been found that compressive strength increases with addition of graphite and maximum up to 3 vol. % of graphite. With further addition of graphite there is a decrease in compressive strength due to increase in brittle nature of composites.ud
机译:铜-石墨金属基复合材料具有铜的性能,即优异的导热性和导电性,以及石墨的性能,即固体润滑和较小的热膨胀系数。含石墨的铜基体由于其优异的导热性和导电性以及良好的自润滑性能,在许多应用中被广泛用作刷子和轴承材料。将固体润滑剂颗粒添加到金属基质中不仅改善了抗磨性能,而且还改善了磨损和摩擦性能。在本研究中,已经尝试通过常规的和火花等离子体烧结(SPS)技术制造Cu-石墨MMC。通过混合1、3、5和10体积的铜石墨MMC。 %的石墨粉转变成铜粉,然后进行常规的粉末冶金路线。通过单轴压制将复合粉末混合物冷压,然后在管式炉中使用氩气烧结。在另一组实验中,Cu-1 vol。 %石墨和Cu-5 vol。通过火花等离子体烧结技术在真空中在700°C下5分钟制造%MMC。通过X射线衍射(XRD)和扫描电子显微镜(SEM)对MMC进行表征。还进行了不同的机械性能,如密度,堆积硬度和磨损研究。 XRD谱图表明存在Cu,石墨和Cu2O峰,这表明在制造过程中Cu和石墨之间没有发生相互作用。 Cu 2 O的弱峰的存在证明了在MMC的常规烧结期间Cu发生了轻微的氧化。但是,在真空中进行SPS时,看不到Cu2O的峰。已经发现,由于石墨的柔软性质,向铜中添加石墨不会导致硬度的很大改善。但是,常规烧结和SPS样品分别获得了90%和97%的理论密度。 Cu-1 vol的最大维氏硬度约为100。由SPS制造时,%MMC。但是,当通过常规烧结在900°C的温度下烧结1小时来制造该复合材料时,其硬度值为65。为了研究研磨的效果,Cu-1vol。 %石墨和Cu-5 vol。将%石墨粉混合物研磨各种时间,然后烧结。已经发现,硬度随着研磨而增加。 Cu-石墨的显微照片反映出界面干净,基质与增强材料之间具有良好的相容性。还已经发现石墨颗粒均匀地分布在铜基质中。从磨损研究可以得出结论,由于石墨的润滑性能,复合材料的耐磨性随石墨含量的增加而增加。还已经发现,随着石墨含量的增加,磨损深度减小。 SPS烧结样品显示出比常规烧结样品更高的耐磨性。还发现,随着石墨的添加,抗压强度增加,最大抗压强度高达3 vol。 %的石墨。进一步添加石墨会降低复合材料的脆性,从而降低其抗压强度。

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  • 入库时间 2022-08-20 20:29:15

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