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首页> 外文期刊>Journal of Composite Materials >Fabrication of bulk aluminum-graphene nanocomposite through friction stir alloying
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Fabrication of bulk aluminum-graphene nanocomposite through friction stir alloying

机译:通过摩擦搅拌合金制造散装铝 - 石墨烯纳米复合材料

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摘要

Friction stir alloying is primarily employed for the fabrication of surface composite to improve surface properties like hardness, wear resistance, and corrosion resistance without significantly affecting the bulk properties of the alloy. The present study demonstrates the novel method for the fabrication of bulk aluminum-graphene nanoplatelets composite by using friction stir alloying. Here, the novelty is shown through the method of graphene nanoplatelets incorporation in the stir zone. For this purpose, a channel is fabricated on the cross-sectional surface of the aluminum plate and filled with graphene nanoplatelets. It is then covered by the cross-sectional surface of another aluminum plate of same dimensions and friction stir alloying is carried out. Reference material (RM) is also fabricated at the same parameters without any graphene nanoplatelet reinforcements for the performance evaluation of the nanocomposite. The microhardness of the fabricated composite increased by similar to 57% as compared to the reference material. However, the tensile strength of the fabricated Al-graphene nanoplatelet composites decreased marginally as compared to reference material. The strengthening of the composite is explained systematically by various mechanisms. The results of microhardness and tensile test were corroborated with various characterization methods such as optical micrographs, scanning electron microscopy, atomic force microscope, and X-ray diffraction.
机译:摩擦搅拌合金化主要用于制造表面复合物以改善硬度,耐磨性和耐腐蚀性的表面性质,而不会显着影响合金的堆积性质。本研究表明,通过使用摩擦搅拌合金化制备块状铝 - 石墨烯纳米粒子复合材料的新方法。这里,通过掺入搅拌区中的石墨烯纳米薄层的方法示出了新颖性。为此目的,在铝板的横截面上制造通道并填充有石墨烯纳米键。然后由相同尺寸的另一铝板的横截面覆盖,并进行摩擦搅拌合金化。参考材料(RM)也在相同的参数下制造,而没有任何石墨烯纳米型纳米缩醛增强物用于纳米复合材料的性能评价。与参考材料相比,制造的复合材料的显微硬度增加与57%相比。然而,与参考材料相比,制造的烷烃纳米纳薄复合材料的拉伸强度略微下降。通过各种机制系统地解释复合材料的强化。用各种表征方法如光学显微照片,扫描电子显微镜,原子力显微镜和X射线衍射进行证实的微硬度和拉伸试验结果。

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