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Extraction of flank wear growth models that correlates cutting edge integrity of ball nose end mills while machining titanium

机译:提取与加工钛合金时球头立铣刀的切削刃完整性相关的侧面磨损增长模型

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摘要

The application of titanium alloys are increasingly seen at aerospace, marine, bio-medical and precision engineering due to its high strength to weight ratio and high temperature properties. However, while machining the titanium alloys using solid carbide tools, even with jet infusion of coolant lower tool life was vividly seen. The high temperatures generated at the tool–work interface causes adhesion of work-material on the cutting edges; hence, shorter tool life was reported. To reduce the high tool–work interface temperature positive rake angle, higher primary relief and higher secondary relief were configured on the ball nose end-mill cutting edges. However, after an initial working period, the growth of flank wear facilitates higher cutting forces followed by work-material adhesion on the cutting edges. Therefore, it is important to blend the strength, sharpness and surface integrity on the cutting edges so that the ball nose end mill would demonstrate an extended tool-life. Presently, validation of tool geometry is very tedious as it requires extensive machining experiments. This paper illustrates a new feature-based ball-noseend-mill–work interface model with correlations to the material removal mechanisms by which the tool geometry optimization becomes easier. The data are further deployed to develop a multi-sensory feature extraction/correlation model to predict the performance using wavelet analysis and Wagner Ville distribution. Conclusively, this method enables to evaluate the different ball nose end mill geometry and reduces the product development cycle time.
机译:由于钛合金的高强度重量比和高温特性,其在航空航天,海洋,生物医学和精密工程中的应用越来越多。但是,在使用整体硬质合金刀具加工钛合金时,即使喷射冷却液,刀具寿命也会明显降低。刀具-工作界面处产生的高温会导致工作材料粘附在切削刃上。因此,据报道缩短了刀具寿命。为了减小较高的工具-工作界面温度正前角,在球头立铣刀的切削刃上配置了较高的主凸角和较高的副凸角。但是,在最初的工作期后,侧面磨损的增加会促进更高的切削力,然后在切削刃上附着工作材料。因此,重要的是在切削刃上混合强度,锋利度和表面完整性,以使球头立铣刀具有更长的刀具寿命。目前,对刀具几何形状的验证非常繁琐,因为它需要进行大量的机加工实验。本文说明了一种新的基于特征的球头铣床-工作界面模型,该模型与材料去除机制相关,从而使工具的几何优化变得更加容易。进一步部署数据以开发多传感器特征提取/相关模型,以使用小波分析和Wagner Ville分布预测性能。最终,这种方法可以评估不同的球头立铣刀的几何形状,并缩短产品开发周期。

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    Ramesh, K; Siong, Lim Beng;

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  • 年度 2016
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