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首页> 外文期刊>Simulation modelling practice and theory: International journal of the Federation of European Simulation Societies >Shear localization sensitivity analysis for Johnson-Cook constitutive parameters on serrated chips in high speed machining of Ti6Al4V
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Shear localization sensitivity analysis for Johnson-Cook constitutive parameters on serrated chips in high speed machining of Ti6Al4V

机译:Ti6Al4V高速加工中锯齿状切屑的Johnson-Cook本构参数的剪切局部敏感性分析

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This research aims to investigate the influence of material constitutive parameters on the serrated chip formation during high speed machining (HSM) of Ti6Al4V alloys with finite element simulations and cutting experiments. The Johnson-Cook (JC) constitutive model and JC fracture model with an energy-based ductile failure criterion are adopted to simulate the HSM process. Five JC constitutive model parameters such as initial yield stress, hardening modulus, strain hardening coefficient, strain rate dependency coefficient, and thermal softening coefficient are included in this research. Shear localization sensitivity is novelly proposed to describe variations of serrated chips under different JC constitutive model parameters. Shear localization sensitivity is subdivided into chip serration sensitivity and chip bending sensitivity. The research finds that the influences of initial yield stress and thermal softening coefficient parameters on the chip serration and bending are much more prominent than those of the rest three JC constitutive model parameters. With initial yield stress or hardening modulus in JC constitutive model increasing, the chip serration sensitivity increases and the chip bending sensitivity decreases. However, the influences of the rest three parameters on chip serration sensitivity are opposite. High speed orthogonal cutting experiments of Ti6Al4V are carried out to validate the simulation results under different cutting speeds ranging from 50 m/min to 3000 m/min and fixed uncut chip thickness with 0.1 mm. The results show that the serrated degree of chips increases with the cutting speed increasing until the chips become completely fragmented. The cutting speed break point of chip morphology from serrated to fragmented ones for Ti6Al4V is about 2500 m/min. The average cutting force decreases with the cutting speed increasing, which is a prominent advantage for HSM. This paper can help to get deeper insights into the serrated chip formation mechanism in HSM. (C) 2015 Elsevier B.V. All rights reserved.
机译:本研究旨在通过有限元模拟和切削实验研究Ti6Al4V合金高速加工(HSM)过程中材料构成参数对锯齿状切屑形成的影响。采用基于能量的韧性破坏准则的Johnson-Cook(JC)本构模型和JC断裂模型来模拟HSM过程。本研究包括五个JC本构模型参数,如初始屈服应力,硬化模量,应变硬化系数,应变率相关系数和热软化系数。新颖地提出了剪切定位敏感性,以描述在不同的JC本构模型参数下锯齿状切屑的变化。剪切定位灵敏度可细分为切屑锯齿灵敏度和切屑弯曲灵敏度。研究发现,初始屈服应力和热软化系数参数对切屑锯齿和弯曲的影响比其余三个JC本构模型参数的影响更为突出。随着JC本构模型中初始屈服应力或硬化模量的增加,切屑锯齿敏感性增加,切屑弯曲敏感性降低。但是,其余三个参数对芯片锯齿敏感性的影响是相反的。进行了Ti6Al4V的高速正交切削实验,以验证在50 m / min至3000 m / min的不同切削速度和0.1 mm固定未切削切屑厚度下的模拟结果。结果表明,切屑的锯齿度随着切削速度的增加而增加,直到切屑完全破碎为止。 Ti6Al4V的切屑形态从锯齿状到碎片状的切削速度断裂点约为2500 m / min。平均切削力随着切削速度的增加而减小,这是HSM的显着优势。本文有助于深入了解HSM中锯齿状切屑形成机理。 (C)2015 Elsevier B.V.保留所有权利。

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