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首页> 外文期刊>Journal of manufacturing science and engineering: Transactions of the ASME >A Modified Johnson-Cook Constitutive Model and Its Application to High Speed Machining of 7050-T7451 Aluminum Alloy
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A Modified Johnson-Cook Constitutive Model and Its Application to High Speed Machining of 7050-T7451 Aluminum Alloy

机译:一种改进的Johnson-Cook本构模型及其在高速加工的7050-T7451铝合金应用

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Constitutive model is the most commonly used method to describe the material deformation behavior during machining process. This paper aims to investigate the material dynamic deformation during high speed machining of 7050-T7451 aluminum alloy with the aid of split Hopkinson pressure bar (SHPB) system and finite element (FE) analysis. First, the quasi static and dynamic compression behaviors of 7050-T7451 aluminum alloy are tested at different loading conditions with a wide range of strain rates (0.001 s, 4000 s, 6000 s, 8000 s, and 12,000 s) and temperatures (room temperature, 100 degrees C, 200 degrees C, 300 degrees C, and 400 degrees C). The influences of temperature on strain and strain rate hardening effects are revealed based on the flow stress behavior and microstructural alteration of tested specimens. Second, a modified Johnson-Cook (JCM) constitutive model is proposed considering the influence of temperature on strain and strain rate hardening. The prediction accuracies of Johnson-Cook (JC) and JCM constitutive models are compared, which indicates that the predicted flow stresses of JCM model agree better with the experimental results. Then the established JC and JCM models are embedded into FE analysis of orthogonal cutting for 7050-T7451 aluminum alloy. The reliabilities of two material models are evaluated with chip morphology and cutting force as assessment criteria. Finally, the material dynamic deformation behavior during high speed machining and compression test is compared. The research results can help to reveal the dynamic properties of 7050-T7451 aluminum alloy and provide mechanical foundation for FE analysis of high speed machining.
机译:本构模型是最常用的方法来描述加工过程中的材料变形行为。本文旨在借助于拆分霍普金森压力棒(SHPB)系统和有限元(FE)分析,研究7050-T7451铝合金高速加工过程中的材料动态变形。首先,在不同的负载条件下测试7050-T7451铝合金的准静态和动态压缩行为,具有宽范围的应变率(0.001秒,4000秒S,8000 S和12,000 s)和温度(室温,100℃,200℃,300摄氏度和400℃)。基于经测试标本的流量应力行为和微观结构改变,揭示了温度对应变和应变速率硬化效应的影响。其次,建议考虑温度对应变和应变率硬化的影响,提出了改进的约翰逊烹饪(JCM)本构模型。比较了约翰逊 - 库克(JC)和JCM本构模型的预测准确性,这表明JCM模型的预测流量应更好地达到了实验结果。然后,已建立的JC和JCM模型嵌入到7050-T7451铝合金的正交切割的FE分析中。两种材料模型的可靠性被芯片形态和切削力评估为评估标准。最后,比较了高速加工和压缩测试期间的材料动态变形行为。研究结果有助于揭示7050-T7451铝合金的动态性能,为高速加工的FE分析提供机械基础。

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