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Prediction of chip morphology and segmentation during the machining of titanium alloys

机译:钛合金加工过程中切屑形态和切屑的预测

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Chip morphology and segmentation play a predominant role in determining machinability and tool wear during the machining of titanium alloys. At lower cutting speeds the chip is often discontinuous, while the chip becomes serrated as the cutting speeds are increased. In this paper a new interpretation of chip segmentation in the cutting of Ti-6Al-4V is presented. It is based on an implicit, Lagrangian, non-isothermal rigid-viscoplastic finite element simulation of orthogonal machining of Ti-6Al-4V in which a dynamic flow stress model based on high strain rate and high temperature, and a ductile fracture criterion based on the strain energy are applied to the crack initiation during the chip segmentation. This model is verified by comparison with experimental results. It is shown from the simulation results that as the cutting speeds are increased the stress state near the tool tip changes, leading to the crack propagation shifting from the tool tip to the free surface of the deformed chip in the shear zone. This change in crack initiation and propagation is the primary reason for the chip changing from the discontinuous to a segregated continuous morphology.
机译:切屑的形态和分割在决定钛合金加工过程中的可切削性和刀具磨损方面起着主要作用。在较低的切削速度下,切屑通常是不连续的,而随着切削速度的增加,切屑会呈锯齿状。在本文中,对Ti-6Al-4V切削中的切屑细分提出了新的解释。它基于Ti-6Al-4V正交加工的隐式,非拉格朗日非等温刚粘塑性有限元模拟,在该模拟中,基于高应变率和高温的动态流应力模型以及基于高应变率和高温的延性断裂准则在切屑分割过程中,应变能被施加到裂纹萌生。通过与实验结果比较验证了该模型。从仿真结果可以看出,随着切削速度的增加,刀尖附近的应力状态发生变化,从而导致裂纹扩展从刀尖转移到剪切区内变形切屑的自由表面。裂纹萌生和扩展的这种变化是切屑从不连续形态变为分离的连续形态的主要原因。

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