Gupta Munish Kumar, Jamil Muhammad, Wang Xiaojuan, Song Qinghua, Liu Zhanqiang, Mia Mozammel, Hegab Hussein, Khan Aqib Mashood, Collado Alberto Garcia, Pruncu Catalin Iulian, Imran G M Shah
Key Laboratory of High Efficiency and Clean Mechanical Manufacture, Ministry of Education, School of Mechanical Engineering, Shandong University, Jinan 250000, China.
College of Mechanical and Electrical Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China.
Materials (Basel). 2019 Aug 30;12(17):2792. doi: 10.3390/ma12172792.
Recently, the application of nano-cutting fluids has gained much attention in the machining of nickel-based super alloys due their good lubricating/cooling properties including thermal conductivity, viscosity, and tribological characteristics. In this study, a set of turning experiments on new nickel-based alloy i.e., Inconel-800 alloy, was performed to explore the characteristics of different nano-cutting fluids (aluminum oxide (AlO), molybdenum disulfide (MoS), and graphite) under minimum quantity lubrication (MQL) conditions. The performance of each nano-cutting fluid was deliberated in terms of machining characteristics such as surface roughness, cutting forces, and tool wear. Further, the data generated through experiments were statistically examined through Box Cox transformation, normal probability plots, and analysis of variance (ANOVA) tests. Then, an in-depth analysis of each process parameter was conducted through line plots and the results were compared with the existing literature. In the end, the composite desirability approach (CDA) was successfully implemented to determine the ideal machining parameters under different nano-cutting cooling conditions. The results demonstrate that the MoS and graphite-based nanofluids give promising results at high cutting speed values, but the overall performance of graphite-based nanofluids is better in terms of good lubrication and cooling properties. It is worth mentioning that the presence of small quantities of graphite in vegetable oil significantly improves the machining characteristics of Inconel-800 alloy as compared with the two other nanofluids.
近年来,纳米切削液因其良好的润滑/冷却性能(包括热导率、粘度和摩擦学特性)在镍基高温合金加工中备受关注。在本研究中,对新型镍基合金即因科镍合金800进行了一系列车削实验,以探究在微量润滑(MQL)条件下不同纳米切削液(氧化铝(AlO)、二硫化钼(MoS)和石墨)的特性。从表面粗糙度、切削力和刀具磨损等加工特性方面对每种纳米切削液的性能进行了研究。此外,通过Box Cox变换、正态概率图和方差分析(ANOVA)测试对实验产生的数据进行了统计检验。然后,通过线图对每个工艺参数进行了深入分析,并将结果与现有文献进行了比较。最后,成功实施了综合可取性方法(CDA)来确定不同纳米切削冷却条件下的理想加工参数。结果表明,基于MoS和石墨的纳米流体在高切削速度值下给出了有前景的结果,但基于石墨的纳米流体在良好的润滑和冷却性能方面整体性能更好。值得一提的是,与其他两种纳米流体相比,植物油中少量石墨的存在显著改善了因科镍合金800的加工特性。