Veeresh Kumar G B, Pramod R, Hari Kiran Reddy R, Ramu P, Kunaal Kumar B, Madhukar Pagidi, Chavali Murthy, Mohammad Faruq, Khiste Sachin K
Department of Mechanical Engineering, National Institute of Technology-Andhra Pradesh, Amrita Vishwa Vidyapeetham University, Coimbatore 641112, India.
Department of Mechanical Engineering, Amrita School of Engineering, Bengaluru Campus, Amrita Vishwa Vidyapeetham University, Coimbatore 641112, India.
Nanomaterials (Basel). 2021 Nov 12;11(11):3039. doi: 10.3390/nano11113039.
The current trend in the materials engineering sector is to develop newer materials that can replace the existing materials in various engineering sectors in order to be more and more efficient. Therefore, the present research work is aimed at fabricating and determining the physical, mechanical, and dry sliding wear properties of titanium carbide (TiC)-reinforced aluminum alloy (Al6061) metal matrix composites (MMCs). For the study, the Al6061-TiC microparticle-reinforced composites were fabricated via the liquid metallurgy route through the stir casting method, where the reinforcement of the TiC particles into the Al6061 alloy matrix was added in the range of 0 to 8.0 wt.%, i.e., in the steps of 2.0 wt.%. The synthesis procedure followed the investigation of the various mechanical properties of Al6061-TiC MMCs, such as the density and structure, as well as mechanical and dry wear experimentation. The tests performed on the casted Al6061, as well as its TiC composites, were in harmony with ASTM standards. As per the experimental outcome, it can be confirmed that the increase in the weight percentage of TiC into the Al6061 alloy substantially increases the density, hardness, and tensile strength, at the expense of the percentage of elongation. In addition, the dry wear experiments, performed on a pin-on-disc tribometer, showed that the Al6061-TiC MMCs have superior wear-resistance properties, as compared to those of pure Al6061 alloy. Furthermore, optical micrograph (OM), powdered X-ray diffraction (XRD), energy dispersive spectroscopy (EDS), and scanning electron microscopy (SEM) analyses were employed for the developed Al6061-TiC MMCs before and after the fracture and wear test studies. From the overall analysis of the results, it can be observed that the Al6061-TiC composite material with higher TiC reinforcement displays superior mechanical characteristics.
材料工程领域当前的趋势是开发新型材料,以取代各工程领域中的现有材料,从而提高效率。因此,本研究工作旨在制备并测定碳化钛(TiC)增强铝合金(Al6061)金属基复合材料(MMC)的物理、机械和干滑动磨损性能。在本研究中,通过搅拌铸造法采用液态冶金路线制备了Al6061-TiC微粒增强复合材料,其中TiC颗粒在Al6061合金基体中的增强量为0至8.0 wt.%,即按2.0 wt.%的步长添加。合成过程之后对Al6061-TiC MMC的各种机械性能进行了研究,如密度和结构,以及机械和干磨损试验。对铸造的Al6061及其TiC复合材料进行的测试符合ASTM标准。根据实验结果,可以确认,Al6061合金中TiC重量百分比的增加会显著提高密度、硬度和拉伸强度,但伸长率会降低。此外,在销盘摩擦磨损试验机上进行的干磨损试验表明,与纯Al6061合金相比,Al6061-TiC MMC具有优异的耐磨性能。此外,在断裂和磨损试验研究前后,对制备的Al6061-TiC MMC进行了光学显微镜(OM)、粉末X射线衍射(XRD)、能谱分析(EDS)和扫描电子显微镜(SEM)分析。从结果的整体分析可以看出,具有较高TiC增强量的Al6061-TiC复合材料显示出优异的机械性能。