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空气冷却条件下纳米复合物理气相沉积涂层对316L不锈钢铣削加工中刀具磨损的影响

Influence of Nanocomposite PVD Coating on Cutting Tool Wear During Milling of 316L Stainless Steel Under Air Cooling Conditions.

作者信息

Tymczyszyn Jarosław, Szajna Artur, Mrówka-Nowotnik Grażyna

机构信息

Department of Manufacturing Techniques and Automation, Faculty of Mechanical Engineering and Aeronautics, Rzeszow University of Technology, 12 Al. Powstancow Warszawy Street, 35-959 Rzeszow, Poland.

Department of Material Science, Faculty of Mechanical Engineering and Aeronautics, Rzeszow University of Technology, 12 Al. Powstancow Warszawy Street, 35-959 Rzeszow, Poland.

出版信息

Materials (Basel). 2025 Apr 25;18(9):1959. doi: 10.3390/ma18091959.

Abstract

This study examines the impact of PVD coatings on cutting tool wear during the milling of 316L stainless steel under air cooling conditions. In the experiment, a carbide milling cutter coated with a nanocomposite nACo3 (AlTiSiN) coating was used. The coating was deposited using a next-generation device, the PLATIT π411PLUS, which features one central and three lateral rotating cathodes. The nanocomposite nACo3 coating obtained with this method exhibits exceptionally high structural density and excellent mechanical properties. The new generation of the nACo3 coating demonstrates improved surface properties and a lower friction coefficient compared to previous generations. The findings indicate that PVD nACo3 coatings significantly enhance wear resistance, extending tool life while maintaining acceptable surface quality. The optimal cutting time was determined to be approximately 90 min, after which a sharp increase in surface roughness and tool wear was observed. After 120 min of machining, substantial deterioration of surface quality parameters was recorded, suggesting increasing cutting forces and cutting edge degradation. SEM and EDS analyses revealed the presence of adhered material on the tool and sulfide inclusions in the microstructure of 316L stainless steel, which influenced the machining process. The nACo3 coating demonstrated high thermal and wear resistance, making it an effective solution for machining difficult-to-cut materials. This study suggests that selecting appropriate cutting parameters, tool geometry, protective coatings, and cooling strategies can significantly affect tool longevity and machining quality. The novelty of this research lies in the application of innovative nanocomposite PVD coatings during the milling of 316L stainless steel under air cooling conditions. These studies indicate potential future research directions, such as the use of minimum quantity lubrication (MQL) or cryogenic cooling as methods to reduce tool wear and improve post-machining surface quality.

摘要

本研究考察了在空气冷却条件下,物理气相沉积(PVD)涂层对316L不锈钢铣削加工过程中刀具磨损的影响。实验中使用了一种涂覆有纳米复合nACo3(AlTiSiN)涂层的硬质合金铣刀。该涂层是使用新一代设备PLATIT π411PLUS沉积的,该设备具有一个中央旋转阴极和三个侧向旋转阴极。用这种方法获得的纳米复合nACo3涂层具有极高的结构密度和优异的机械性能。与前代涂层相比,新一代nACo3涂层展现出了更好的表面性能和更低的摩擦系数。研究结果表明,PVD nACo3涂层显著提高了耐磨性,延长了刀具寿命,同时保持了可接受的表面质量。确定最佳切削时间约为90分钟,此后观察到表面粗糙度和刀具磨损急剧增加。加工120分钟后,记录到表面质量参数大幅恶化,表明切削力增加且切削刃退化。扫描电子显微镜(SEM)和能谱分析(EDS)显示,刀具上存在附着材料,316L不锈钢微观结构中存在硫化物夹杂物,这些影响了加工过程。nACo3涂层表现出高耐热性和耐磨性,使其成为加工难切削材料的有效解决方案。本研究表明,选择合适的切削参数、刀具几何形状、防护涂层和冷却策略会显著影响刀具寿命和加工质量。本研究的新颖之处在于在空气冷却条件下对316L不锈钢进行铣削加工时应用了创新的纳米复合PVD涂层。这些研究指出了未来潜在的研究方向,如使用微量润滑(MQL)或低温冷却作为减少刀具磨损和改善加工后表面质量的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8dd/12073052/39c1c8d2e6f0/materials-18-01959-g001.jpg

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