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Evaluation of different flow stress laws coupled with a physical based ductile failure criterion for the modelling of the chip formation process of Ti-6Al-4V under broaching conditions

机译:评估不同的流动应力定律,并结合基于物理的延性破坏准则,对拉削条件下的Ti-6Al-4V切屑形成过程进行建模

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During the machining of Ti-6Al-4V the changing deformation mechanisms produce a complex microstructure of segmented chips, which directly influenced tool-wear and process stability. Numerical simulation could give an insight into the physical phenomena involved in chip segmentation, but its accuracy is directly related to the reliability of the input parameters. In this work, therefore, three different flow stress law were evaluated coupled with a physical based ductile failure criterion, which depends on stress triaxiality and temperature. To this end, the flow stress laws were implemented in the finite element software AdvantEdge by programming user-defined subroutines. The resulting FEM models were compared with orthogonal cutting experimental tests (tubular/linear), analyzing different fundamental outputs (machining forces, temperatures in the workpiece and chip morphology). All the FEM models showed good agreement with the experimental results.
机译:在Ti-6Al-4V的加工过程中,变化的变形机制产生了分段切屑的复杂微观结构,这直接影响了刀具的磨损和工艺稳定性。数值模拟可以深入了解芯片分割中涉及的物理现象,但其准确性与输入参数的可靠性直接相关。因此,在这项工作中,评估了三种不同的流动应力定律,并结合了基于物理的韧性破坏准则,该准则取决于应力三轴性和温度。为此,通过编程用户定义的子例程,在有限元软件AdvantEdge中实现了流应力定律。将所得的FEM模型与正交切削实验测试(管状/线性)进行比较,分析不同的基本输出(加工力,工件温度和切屑形态)。所有的有限元模型都与实验结果吻合良好。

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