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Investigation on the Tool Wear Suppression Mechanism in Non-Resonant Vibration-Assisted Micro Milling

机译:非共振振动辅助微铣削刀具磨损机理的研究

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摘要

Excessive tool wear during hard and brittle material processing severely influences cutting performance. As one of the advanced machining technologies, vibration-assisted micro milling adds high-frequency small amplitude vibration on a micro milling tool or workpiece to improve cutting performance, especially for hard and brittle materials. In this paper, the tool wear suppression mechanism in non-resonant vibration-assisted micro milling is studied by using both finite element simulation and experiment methods. A finite element model of vibration-assisted micro milling using ABAQUS is developed based on the Johnson cook material and damage models. The tool-workpiece separation conditions are studied by considering the tool tip trajectories. The machining experiments are carried out on Ti-6Al-4V with a coated micro milling tool (fine-grain tungsten carbide substrate with ZrO2-BaCrO4 (ZB) coating) under different vibration frequencies (high, medium, and low) and cutting states (tool-workpiece separation or non-separation). The results show that tool wear can be reduced effectively in vibration-assisted micro milling due to different wear suppression mechanisms. The relationship between tool wear and cutting performance is studied, and the results indicate that besides tool wear reduction, better surface finish, lower burrs, and smaller chips can also be obtained as vibration assistance is added.
机译:硬质和脆性材料加工过程中过度磨损的刀具会严重影响切削性能。作为一种先进的加工技术,振动辅助微铣削在微铣削刀具或工件上增加了高频小振幅振动,以改善切削性能,特别是对于硬而脆的材料。本文通过有限元模拟和实验方法,研究了非共振振动辅助铣削中的刀具磨损抑制机理。基于Johnson Cook的材料和损伤模型,开发了使用ABAQUS的振动辅助微铣削的有限元模型。通过考虑刀尖轨迹研究刀具-工件分离条件。使用涂覆的微型铣削工具(带有ZrO2-BaCrO4(ZB)涂层的细晶粒碳化钨基体)在不同的振动频率(高,中和低)和切削状态下对Ti-6Al-4V进行机加工实验(工具-工件分离或不分离)。结果表明,由于不同的磨损抑制机制,在振动辅助微铣削中可以有效降低刀具磨损。研究了刀具磨损与切削性能之间的关系,结果表明,除了减少刀具磨损外,添加振动辅助剂还可以获得更好的表面光洁度,较低的毛刺和较小的切屑。

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