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A new material model for 2D numerical simulation of serrated chip formation when machining titanium alloy Ti-6Al-4V

机译:钛合金Ti-6Al-4V加工时锯齿状切屑形成二维数值模拟的新材料模型

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摘要

A new material constitutive law is implemented in a 2D finite element model to analyse the chip formation and shear localisation when machining titanium alloys. The numerical simulations use a commercial finite element software (FORGE 2005) able to solve complexthermo-mechanical problems. One of the main machining characteristics of titanium alloys is to produce segmented chips for a wide range of cutting speeds and feeds. The present study assumes that the chip segmentation is only induced by adiabatic shear banding,without material failure in the primary shear zone. The new developed model takes into account the influence of strain, strain rate and temperature on the flow stress and also introduces a strain softening effect. The tool chip friction is managed by a combinedCoulomb–Tresca friction law. The influence of two different strain softening levels and machining parameters on the cutting forces and chip morphology has been studied. Chip morphology, cutting and feed forces predicted by numerical simulations are compared with experimental results.
机译:在二维有限元模型中实现了新的材料本构定律,以分析加工钛合金时的切屑形成和剪切局部化。数值模拟使用能够解决复杂的热机械问题的商业有限元软件(FORGE 2005)。钛合金的主要加工特征之一是生产分段切屑,以适应各种切削速度和进给。本研究假设切屑分段仅由绝热剪切带引起,而在主剪切区没有材料破坏。新开发的模型考虑了应变,应变速率和温度对流动应力的影响,并引入了应变软化效果。工具屑的摩擦由库仑-特雷斯卡摩擦定律共同控制。研究了两种不同的应变软化水平和加工参数对切削力和切屑形态的影响。将数值模拟预测的切屑形态,切削力和进给力与实验结果进行了比较。

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