Influence of Graphene on the Microstructure and Mechanical Properties of Aluminium Matrix Composite

Mohammad Na’aim Abd Rahim, Mohd Shukor Salleh, Sivarao Subramonian, Mohamad Ridzuan Mohamad Kamal, Salah Salman Al-Zubaidi
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Abstract

The constraints of conventional aluminum alloys have prompted the investigation of strengthening substances such as carbon nanotubes and graphene fillers. The improved composite exhibits suitability for applications in the automotive and aviation industries. Graphene's popularity stems from its high strength, electrical and thermal conductivity, and chemical inertness, making it ideal for mechanical, thermal, and microstructural applications. This research varied concentrations of graphene nanoplatelets (0.3%, 0.6%, and 0.9%) to enhance the mechanical properties of aluminum metal matrix composites. A stir casting process was employed to create a graphene-reinforced aluminum matrix composite using A356 aluminum alloy. A designed experiment (DOE) investigated the impacts of graphene concentration and suitable heat treatment time on the aluminum composite. Subsequently, the specimens underwent heat treatment and X-ray diffraction (XRD). Mechanical properties were examined using a universal testing machine. The best aluminum matrix composites were produced with 0.9wt% graphene and 180 minutes of heat treatment. These parameters resulted in a microstructure with refined grains evolving from dendritic to rosette. The grains became closely packed, and reduced porosity was observed. As a result, the mechanical properties were enhanced, with a maximum ultimate tensile strength (UTS) of 250 MPa and a fracture elongation of 6%. The findings indicate that graphene nanoplatelet (GNP) concentration significantly influences the mechanical characteristics of the composite. Tensile and yield strength increase with GNP concentration, but higher concentrations reduce the composite's ductility. These insights contribute to optimizing GNP-reinforced composites and developing innovative materials with superior mechanical properties.
石墨烯对铝基复合材料微观结构和力学性能的影响
传统铝合金的局限性促使人们开始研究碳纳米管和石墨烯填料等强化物质。改进后的复合材料适用于汽车和航空工业。石墨烯因其高强度、导电性、导热性和化学惰性而广受欢迎,是机械、热和微结构应用的理想材料。本研究采用不同浓度的石墨烯纳米片(0.3%、0.6% 和 0.9%)来增强铝金属基复合材料的机械性能。采用搅拌铸造工艺,使用 A356 铝合金制造石墨烯增强铝基复合材料。设计实验(DOE)研究了石墨烯浓度和合适的热处理时间对铝复合材料的影响。随后,对试样进行了热处理和 X 射线衍射 (XRD)。使用万能试验机检测了机械性能。石墨烯含量为 0.9wt%、热处理时间为 180 分钟的铝基复合材料效果最佳。这些参数使微观结构中的细化晶粒从树枝状演变为莲座状。晶粒变得紧密堆积,孔隙率降低。因此,机械性能得到了提高,最大极限拉伸强度(UTS)为 250 兆帕,断裂伸长率为 6%。研究结果表明,石墨烯纳米板(GNP)浓度对复合材料的机械特性有显著影响。拉伸强度和屈服强度随 GNP 浓度的增加而增加,但浓度越高,复合材料的延展性越差。这些见解有助于优化 GNP 增强复合材料和开发具有优异机械性能的创新材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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