首页> 外文会议>ASME international manufacturing science and engineering conference 2011 >PREDICTING THE HIGH SPEED CUTTING PROCESS OF TITANIUM ALLOY BY FINITE ELEMENT METHOD
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PREDICTING THE HIGH SPEED CUTTING PROCESS OF TITANIUM ALLOY BY FINITE ELEMENT METHOD

机译:有限元法预测钛合金的高速切削工艺。

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摘要

To predict the cutting forces and cutting temperatures accurately in high speed dry cutting Ti-6A1-4V alloy, a Finite Element (FE) model is established based on ABAQUS. The tool-chip-work friction coefficients are calculated analytically using the measured cutting forces and chip morphology parameter obtained by conducting the orthogonal (2-D) machining tests. It reveals that the friction coefficients between tool-work are 3-7 times larger than that between tool-chip, and the friction coefficients of tool-chip-work vary with feed rates. The analysis provides a better reference for the tool-work-chip friction coefficients than that given by literature empirically regardless of machining conditions. The FE model is capable of effectively simulating the high speed dry cutting process of Ti-6A1-4V alloy based on the modified Johnson-Cook model and tool-work-chip friction coefficients obtained analytically. The FE model is further validated in terms of predicted forces and the chip morphology. The predicted cutting force, thrust force and resultant force by the FE model agree well with the experimentally measured forces. The errors in terms of the predicted average value of chip pitch and the distance between chip valley and chip peak are smaller. The FE model further predicts the cutting temperature and residual stresses during high speed dry cutting of Ti-6A1-4V alloy. The maximum tool temperatures exist along the round tool edge, and the residual stress profiles along the machined surface are hook-shaped regardless of machining conditions.
机译:为了准确预测高速干切削Ti-6A1-4V合金的切削力和切削温度,基于ABAQUS建立了有限元(FE)模型。使用测量的切削力和通过进行正交(2-D)加工测试获得的切屑形态参数,解析地计算出刀具-切屑-工作摩擦系数。结果表明,刀具间的摩擦系数是切屑间摩擦系数的3-7倍,且切屑间的摩擦系数随进给速度的变化而变化。不论加工条件如何,该分析为文献中的工具-工件-切屑摩擦系数提供了更好的参考。有限元模型能够基于改进的Johnson-Cook模型和解析得到的工具-工件-切屑摩擦系数,有效地模拟Ti-6A1-4V合金的高速干切削过程。在预测力和切屑形态方面进一步验证了有限元模型。 FE模型预测的切削力,推力和合力与实验测得的力非常吻合。关于切屑间距的预测平均值以及切屑谷与切屑峰之间的距离的误差较小。 FE模型进一步预测了Ti-6A1-4V合金的高速干切削过程中的切削温度和残余应力。最高刀具温度沿圆形刀具边缘存在,并且与加工条件无关,沿加工表面的残余应力分布为钩形。

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