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Prediction of cutting forces from an analytical model of oblique cutting, application to peripheral milling of Ti-6Al-4V alloy

机译:从倾斜切削分析模型预测切削力,并将其应用于Ti-6Al-4V合金的外围铣削

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摘要

In this work, a predictive machining theory, based on an analytical thermomechanical approach of oblique cutting (Moufki et al., Int J Mech Sci 42:1205-1232, 2000; Moufki et al., Int J Mach Tools Manuf 44:971-989, 2004), is applied to the peripheral milling process. The material characteristics such as strain rate sensitivity, strain hardening and thermal softening are considered. In the primary shear zone, thermomechanical coupling and inertia effects are accounted for. Due to the fact that the reference frame associated to the primary shear zone moves with the tool rotation, an analysis of the inertial effects has been performed. As the heat conductivity of Ti-6Al-4V is low, the thermomechanical process of chip formation is supposed to be adiabatic; thus, the problem equations are reduced to a system of two non-linear equations which are solved numerically by combining the Newton-Raphson method and Gaussian quadrature. The present analytical approach leads to a three-dimensional cutting force model for end milling operations. Calculated and experimental results extracted from the literature are compared for several operations: full immersion, up-milling and down-milling and for different cutting conditions. Although the present model was established for stationary conditions and for continuous chips, it gives acceptable predictions for machining titanium alloy for which the chips are usually segmented. The proposed model appears as an interesting alternative to the mechanistic approach which requires many experimental tests to determine the milling cutting force coefficients.
机译:在这项工作中,基于斜切的分析热机械方法,建立了预测加工理论(Moufki等人,Int J Mech Sci 42:1205-1232,2000; Moufki等人,Int J Mach Tools Manuf 44:971- 989(2004)。考虑了诸如应变速率敏感性,应变硬化和热软化的材料特性。在主剪切区,考虑了热力耦合和惯性效应。由于与主剪切区关联的参考系随工具旋转而移动的事实,因此已经对惯性效应进行了分析。由于Ti-6Al-4V的热导率较低,因此切屑形成的热机械过程被认为是绝热的。因此,问题方程简化为两个非线性方程的系统,通过结合牛顿-拉夫森法和高斯求积对它们进行数值求解。本分析方法导致了用于端铣削操作的三维切削力模型。比较了从文献中提取的计算结果和实验结果,进行了几种操作:全浸,上铣和下铣以及不同的切割条件。尽管本模型是针对固定条件和连续切屑建立的,但它为加工通常切成碎片的钛合金提供了可接受的预测。所提出的模型似乎是机械方法的有趣替代方法,该方法需要许多实验测试来确定铣削切削力系数。

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