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Preparation and characterization of Cu/(WC-TiC-Co)/graphene nano-composites as a suitable material for heat sink by powder metallurgy Cheek for method

机译:Cu /(WC-CO)/石墨烯纳米复合材料的制备及表征作为粉末冶金脸颊散热器的合适材料

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Cu/WC-TiC-Co/GNs nano-composites were successfully prepared by the powder metallurgy technique. The predetermined weight percent value of WC-TiC-Co powder was mixed with 0.25, 0.5, 0.75, and 1 wt% of graphene nano-sheets for 3 h. by 1:2 powder to ball ratio. The mixed powders were coated with 90 wt% copper by the electro-less deposition technique. The composites were compacted at 900 MPa then sintered twice in a hydrogen atmosphere furnace once at 1000 degrees C and another at 1100 degrees C for 140 min. Sintering at 1000 degrees C proved to present the more suitable temperature. Both SEM and EDAX were used to investigate the microstructure and constituents of the sintered nano-composites. The relative density, hardness, electrical and thermal conductivity were studied. The microstructure refers to a good adhesion and homogeneous distribution of WC-TiC-Co and GNs in the copper metal matrix. The results showed that the relative density was increased up to 0.25 wt% GNs then decreased. In spite of the decreasing of the density after 0.25 wt% GNs, the hardness increased up to 1 wt% GNs. Because of the large surface area and the nano-size thickness of GNs, electrical and thermal conductivities got increased by its increasing up to 1 wt%.
机译:通过粉末冶金技术成功制备Cu / WC-TiC-Co / GNS纳米复合材料。将WC-TiC-Co粉末的预定重量百分比值与0.25,0.5,0.75和1wt%的石墨烯纳米片混合3小时。用1:2粉末到球比。通过无电光沉积技术将混合粉末涂覆90wt%铜。将复合材料紧制为900MPa,然后在氢气氛炉中烧结两次,在1000℃下,另一个在1100℃下烧结140分钟。在1000摄氏度下烧结证明了更合适的温度。 SEM和edax均用于研究烧结纳米复合材料的微观结构和成分。研究了相对密度,硬度,电力和导热率。微观结构是指铜金属基质中WC-TIC-CO和GNS的良好粘附和均匀分布。结果表明,相对密度增加至0.25wt%的GNS然后降低。尽管在0.25重量%GNS后密度降低,但硬度增加至1wt%的GNS。由于大的表面积和GNS的纳米尺寸厚度,电气和导热率增加到高达1wt%的增加。

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