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碳在制备用于摩擦学应用的铝碳化硅纳米复合材料中的作用。

Effect of Carbon in Fabrication Al-SiC Nanocomposites for Tribological Application.

作者信息

Hekner Bartosz, Myalski Jerzy, Pawlik Tomasz, Sopicka-Lizer Małgorzata

机构信息

Faculty of Material Engineering and Metallurgy, Silesian University of Technology, Katowice 40-019, Krasińskiego 8, Poland.

出版信息

Materials (Basel). 2017 Jun 21;10(6):679. doi: 10.3390/ma10060679.

Abstract

Aluminium-based hybrid composites are a new class of advanced materials with the potential of satisfying the demands in engineering applications. This paper describes the effects of carbon addition on the formation and properties of AMC with SiC nanoparticles reinforcement. The composites were produced via mechanical alloying followed by hot pressing. Three forms of carbon, graphite (GR), multiwalled carbon nanotubes (CNTs), and, for the first time, glassy carbon (GC), were used for the hybrid composites manufacturing and compared with tribological properties of Al-SiC composite without carbon addition. GC and CNTs enhanced formation of Al-SiC composite particles and resulted in a homogeneous distribution of reinforcing particles. On the other hand, GR addition altered mechanochemical alloying and did not lead to a proper distribution of nanoparticulate SiC reinforcement. Hot pressing technique led to the reaction between Al and carbon as well as SiC particles and caused the formation of Al₄C₃ and γ-Al₂O₃. The subsistence of carbon particles in the composites altered the predominant wear mechanisms since the wear reduction and the stabilization of the friction coefficient were observed. GC with simultaneous γ-Al₂O₃ formation in the hybrid Al-SiC(n)-C composites turned out to be the most effective additive in terms of their tribological behaviour.

摘要

铝基混杂复合材料是一类新型的先进材料,有潜力满足工程应用中的需求。本文描述了添加碳对以碳化硅纳米颗粒为增强体的铝基混杂复合材料的形成及性能的影响。这些复合材料通过机械合金化然后热压制备而成。三种形式的碳,即石墨(GR)、多壁碳纳米管(CNTs),以及首次使用的玻璃碳(GC),被用于混杂复合材料的制造,并与未添加碳的铝-碳化硅复合材料的摩擦学性能进行了比较。玻璃碳和碳纳米管促进了铝-碳化硅复合颗粒的形成,并使增强颗粒分布均匀。另一方面,添加石墨改变了机械化学合金化过程,导致纳米颗粒状碳化硅增强体分布不均。热压技术导致铝与碳以及碳化硅颗粒之间发生反应,并生成了Al₄C₃和γ-Al₂O₃。复合材料中碳颗粒的存在改变了主要磨损机制,因为观察到了磨损减少和摩擦系数稳定的现象。就其摩擦学行为而言,在混杂的铝-碳化硅(n)-碳复合材料中同时形成γ-Al₂O₃的玻璃碳是最有效的添加剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f419/5554060/e1dcd2e22a93/materials-10-00679-g001.jpg

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