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首页> 外文期刊>Advances in Mechanical Engineering >Numerical and experimental investigation of Johnson–Cook material models for aluminum (Al 6061-T6) alloy using orthogonal machining approach
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Numerical and experimental investigation of Johnson–Cook material models for aluminum (Al 6061-T6) alloy using orthogonal machining approach

机译:正交加工方法对铝(Al 6061-T6)合金Johnson-Cook材料模型的数值和实验研究

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This research focuses on the study of the effects of processing conditions on the Johnson–Cook material model parameters for orthogonal machining of aluminum (Al 6061-T6) alloy. Two sets of parameters of Johnson–Cook material model describing material behavior of Al 6061-T6 were investigated by comparing cutting forces and chip morphology. A two-dimensional finite element model was developed and validated with the experimental results published literature. Cutting tests were conducted at low-, medium-, and high-speed cutting speeds. Chip formation and cutting forces were compared with the numerical model. A novel technique of cutting force measurement using power meter was also validated. It was found that the cutting forces decrease at higher cutting speeds as compared to the low and medium cutting speeds. The poor prediction of cutting forces by Johnson–Cook model at higher cutting speeds and feed rates showed the existence of a material behavior that does not exist at lower or medium cutting speeds. Tw.
机译:这项研究的重点是研究加工条件对Johnson-Cook材料模型参数的影响,这些参数用于正交加工铝(Al 6061-T6)合金。通过比较切削力和切屑形态,研究了描述Al 6061-T6材料行为的两组Johnson-Cook材料模型参数。建立了二维有限元模型,并用已发表的实验结果进行了验证。切割测试以低,中和高速切割速度进行。将切屑形成和切削力与数值模型进行了比较。还验证了使用功率计测量切削力的新技术。已经发现,与低和中等切削速度相比,切削力在更高的切削速度下降低。 Johnson-Cook模型在较高的切削速度和进给速度下对切削力的预测不佳,这表明存在一种材料性能,而在较低或中等的切削速度下则不存在。 Tw。

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