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Drilling High Precision Holes in Ti6Al4V Using Rotary Ultrasonic Machining and Uncertainties Underlying Cutting Force Tool Wear and Production Inaccuracies

机译:使用旋转超声波加工在Ti6Al4V中钻高精度孔以及切削力工具磨损和生产误差的潜在不确定性

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摘要

Ti6Al4V alloys are difficult-to-cut materials that have extensive applications in the automotive and aerospace industry. A great deal of effort has been made to develop and improve the machining operations of Ti6Al4V alloys. This paper presents an experimental study that systematically analyzes the effects of the machining conditions (ultrasonic power, feed rate, spindle speed, and tool diameter) on the performance parameters (cutting force, tool wear, overcut error, and cylindricity error), while drilling high precision holes on the workpiece made of Ti6Al4V alloys using rotary ultrasonic machining (RUM). Numerical results were obtained by conducting experiments following the design of an experiment procedure. The effects of the machining conditions on each performance parameter have been determined by constructing a set of possibility distributions (i.e., trapezoidal fuzzy numbers) from the experimental data. A possibility distribution is a probability-distribution-neural representation of uncertainty, and is effective in quantifying the uncertainty underlying physical quantities when there is a limited number of data points which is the case here. Lastly, the optimal machining conditions have been identified using these possibility distributions.
机译:Ti6Al4V合金是难切削的材料,在汽车和航空航天工业中具有广泛的应用。为了开发和改善Ti6Al4V合金的加工操作,已经付出了巨大的努力。本文提出了一项实验研究,该研究系统地分析了钻削时加工条件(超声波功率,进给速度,主轴转速和刀具直径)对性能参数(切削力,刀具磨损,过切误差和圆柱度误差)的影响。使用旋转超声加工(RUM)在由Ti6Al4V合金制成的工件上加工高精度孔。通过遵循实验程序的设计进行实验,获得了数值结果。加工条件对每个性能参数的影响已经通过从实验数据构造一组可能性分布(即梯形模糊数)来确定。可能性分布是不确定性的概率分布神经表示,当数据点数量有限时(在这种情况下),有效地量化了物理量下的不确定性。最后,使用这些可能性分布确定了最佳加工条件。

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