Dang Minh Nhat, Singh Surinder, Navarro-Devia John H, King Hannah J, Hocking Rosalie K, Wade Scott A, Stephens Guy, Papageorgiou Angelo, Wang James
The Australian Research Council (ARC) Training Centre in Surface Engineering for Advanced Materials (SEAM), School of Engineering, Swinburne University of Technology, P.O. Box 218, Hawthorn, VIC 3122, Australia.
Sutton Tools, 378 Settlement Rd, Thomastown, VIC 3074, Australia.
Micromachines (Basel). 2023 Oct 22;14(10):1970. doi: 10.3390/mi14101970.
The performance and lifespan of cutting tools are significantly influenced by their surface quality. The present report highlights recent advances in enhancing the surface characteristics of tungsten carbide and high-speed steel cutting tools using a novel micro-machining technique for polishing and edge-honing. Notably, the main aim was to reduce the surface roughness while maintaining the hardness of the materials at an optimal level. By conducting a thorough analysis of surfaces obtained using different techniques, it was found that the micro-machining method effectively decreased the surface roughness of the cutting tools the most effectively out of the techniques investigated. Significantly, the surface roughness was reduced from an initial measurement of 400 nm to an impressive value of 60 nm. No significant change in hardness was observed, which guarantees the maintenance of the mechanical properties of the cutting tools. This analysis enhances the comprehension of surface enhancement methodologies for cutting tools through the presentation of these findings. The observed decrease in surface roughness, along with the consistent hardness, exhibits potential for improving tool performance. These enhancements possess the capacity to optimise manufacturing processes, increase tool reliability, and minimise waste generation.
切削刀具的性能和使用寿命受到其表面质量的显著影响。本报告重点介绍了利用一种新颖的微加工技术进行抛光和刃磨来提高硬质合金和高速钢切削刀具表面特性的最新进展。值得注意的是,主要目标是降低表面粗糙度,同时将材料的硬度保持在最佳水平。通过对使用不同技术获得的表面进行全面分析,发现微加工方法在所有研究的技术中最有效地降低了切削刀具的表面粗糙度。显著的是,表面粗糙度从初始测量的400纳米降低到了令人印象深刻的60纳米。未观察到硬度有显著变化,这保证了切削刀具机械性能的维持。通过展示这些发现,该分析增强了对切削刀具表面强化方法的理解。观察到的表面粗糙度降低以及硬度的保持,显示出改善刀具性能的潜力。这些改进有能力优化制造工艺、提高刀具可靠性并减少废物产生。