Cite this article as:

Vijay Pratap Singh, Abhishek Sharma, Gaurav Kumar Gupta, Mohammad Ashiq, Sunil Patidar, Manoj Kumar, and Srinibash Mishra, Evolution of microstructure and mechanical properties of graphene oxide-reinforced aluminum alloy (6061) composite fabricated via accumulative roll bonding, Int. J. Miner. Metall. Mater., (2026). https://doi.org/10.1007/s12613-025-3194-7
Vijay Pratap Singh, Abhishek Sharma, Gaurav Kumar Gupta, Mohammad Ashiq, Sunil Patidar, Manoj Kumar, and Srinibash Mishra, Evolution of microstructure and mechanical properties of graphene oxide-reinforced aluminum alloy (6061) composite fabricated via accumulative roll bonding, Int. J. Miner. Metall. Mater., (2026). https://doi.org/10.1007/s12613-025-3194-7
引用本文 PDF XML SpringerLink

累积辊压制备氧化石墨烯增强铝合金复合材料的微观结构和力学性能演变

摘要: 本研究探讨了使用累积辊压(ARB)制备和表征氧化石墨烯(GO)增强铝合金基复合材料。退火后的Al 6061板材经过5道ARB加工,在累积辊压开始时用GO作为增强基。扫描电子显微镜显示由于微尺度材料混合,GO团聚得到有效缓解,界面结合得到改善。拉曼光谱证实了GO与铝合金基体之间的强烈相互作用通过D带强度的增加以及2D带对称性的增强得到证明。机械性能测试表明,与退火Al 6061相比,ARB处理的Al 6061/0.2wt%GO复合材料的屈服强度(YS)提高了约338.37%,硬度提高了86.42%;与未增强的ARB Al 6061试样相比,经过五道次后,ARB加工的Al 6061/0.2wt%GO复合材料的YS提高了约14.15%,硬度改善了17.23%。X射线衍射分析表明位错密度增加,证实了观察到的机械性能增强。断裂面分析显示,伸长率降低,出现深凹痕,突出了强度和延展性之间的权衡。这些结果证明了ARB将GO整合到Al 6061基体中以提高机械性能和界面结合的有效性,并强调了其作为先进复合材料的潜力。

 

Evolution of microstructure and mechanical properties of graphene oxide-reinforced aluminum alloy (6061) composite fabricated via accumulative roll bonding

Abstract: This study investigates the fabrication and characterization of Al alloy matrix composites reinforced with graphene oxide (GO) using accumulative roll bonding (ARB). The annealed Al 6061 sheets were processed through 5-pass ARB with GO reinforcement applied during the initial passes. Scanning electron microscopy revealed effective mitigation of GO agglomeration and improved interface bonding due to microscale material mixing. Raman spectroscopy confirmed the strong interaction between GO and the Al alloy matrix, as evidenced by the increased D band intensities and enhanced 2D band symmetry. Mechanical testing indicated an approximately 338.37% increase in yield strength (YS) and 86.42% improvement in hardness for the ARB-processed (ARBed) Al 6061/GO composite (0.2wt%) compared with annealed Al 6061 and an approximately 14.15% increase in YS and 17.23% improvement in hardness for the ARBed Al/GO composite (0.2wt%) compared with unreinforced ARBed Al 6061 specimens after five passes. X-ray diffraction analysis indicated an increased dislocation density, corroborating the observed enhancements in mechanical properties. Fracture surface analysis revealed reduced elongation with deep dimples, highlighting the tradeoff between strength and ductility. These results demonstrate the effectiveness of ARB for integrating GO into the Al 6061 matrix to improve the mechanical performance and interfacial bonding and underscore its potential for advanced composite materials.

 

/

返回文章
返回