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首页> 外文期刊>International Journal of Machining and Machinability of Materials >Finite element modelling of orthogonal machining of hard to machine materials
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Finite element modelling of orthogonal machining of hard to machine materials

机译:难加工材料正交加工的有限元建模

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摘要

This paper presents a detailed finite element model to predict deformation and other machining characteristics involved in high-speed orthogonal machining (cutting speed > 54 m/min) of hard-to-deform materials like Ti6Al4V. The influence of various cutting parameters like feed rate, spindle speed, and rake angle, on the output parameters like cutting force and surface finish, was analysed. The paper tries to relate the degree of surface finish with the variance of the effective plastic strain. The Johnson-Cook material model is used to describe the material constitutive behaviour, and the Johnson-Cook damage model is used to establish the damage criteria. Due to the high machining costs associated with the titanium alloy, the model is first validated using aluminium alloy (Al2024-T351), and the same model is then extended to predict the results for titanium alloy. The matrix for the design of experiments (DOE) considers a full factorial approach, with about 48 simulations, for a proper understanding on the influence of the major machining parameters. A dynamic, explicit integration scheme is used along with the arbitrary Lagrangian-Eulerian (ALE) technique to accurately predict material flow. This paper also presents a unique method to tackle the commonly encountered numerical issues involved in modelling self-contact.
机译:本文提出了一个详细的有限元模型,以预测Ti6Al4V等难变形材料的高速正交加工(切削速度> 54 m / min)所涉及的变形和其他加工特性。分析了进给速度,主轴转速和前角等各种切削参数对切削力和表面光洁度等输出参数的影响。本文试图将表面光洁度与有效塑性应变的变化联系起来。 Johnson-Cook材料模型用于描述材料的本构行为,Johnson-Cook损伤模型用于建立损伤标准。由于钛合金的加工成本高昂,因此首先使用铝合金(Al2024-T351)对该模型进行验证,然后扩展同一模型以预测钛合金的结果。实验设计矩阵(DOE)考虑了完整的析因方法,并进行了约48次模拟,以正确理解主要加工参数的影响。动态的显式集成方案与任意拉格朗日-欧拉(ALE)技术一起使用,可以准确地预测物料流量。本文还提出了一种独特的方法来解决与自接触建模有关的常见数值问题。

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