首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >Predictive modelling of cutting forces in end milling of titanium alloy Ti6Al4V
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Predictive modelling of cutting forces in end milling of titanium alloy Ti6Al4V

机译:钛合金钛合金末端铣削切削力的预测建模

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摘要

A cutting force model, based on a predictive model for orthogonal cutting, is developed for force predictions in end milling of titanium alloy Ti6Al4V. The model assumes a semi-stationary process for the serrated chip formation. The Johnson-Cook material model that couples strain hardening, strain rate sensitivity and thermal softening effects is applied to represent the material strength. A thermal model considering the tool thermal properties is integrated to account for the high temperature rise due to the low thermal conductivity of Ti6Al4V. To extend the predictive model to milling, the end mill is discretised into several axial slices, and an equivalent cutting edge is used to include the end cutting edge effect caused by the first axial slice. The model is assessed by comparing its prediction with the experimental results and a mechanistic model for verification. The results show that the proposed model outperforms the mechanistic model with higher accuracy in force prediction.
机译:基于正交切割预测模型的切割力模型是为了强制预测钛合金Ti6Al4V的力预测。 该模型假设锯齿状芯片形成的半静止过程。 Johnson-Cook材料模型,耦合应变硬化,应变率灵敏度和热软化效果来代表材料强度。 考虑到工具热性能的热模型被集成,以考虑由于Ti6Al4V的低导热率导致的高温上升。 为了将预测模型延伸到研磨,将终端铣刀离散到几个轴向切片中,并且使用等效的切削刃包括由第一轴向切片引起的端部切削刃效应。 通过将其预测与实验结果和验证的机械模型进行比较来评估该模型。 结果表明,所提出的模型优于力学预测的更高精度的机制模型。

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