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Hybrid analytical-numerical solution for the shear angle in orthogonal metal cutting - part II: experimental verification

机译:正交金属切削中剪切角的混合解析数值解法-第二部分:实验验证

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摘要

The hybrid analytical-finite element model described in Part I is applied to predict the shear angle for a range of cutting velocity, uncut chip thickness, and two tool orthogonal rake angles. Experimental results and an empirical equation are also presented for the influence of the cutting conditions and cutting tool geometry on the chip-tool contact length. It is shown that there is a linear dependence between the chip-tool contact length/uncut chip thickness ratio and chip thickness/uncut chip thickness ratio over the range of cutting conditions assumed. The increase of the shear angle with the tool orthogonal rake is mostly due to the reduction of the specific shear energy in the primary shear zone and the specific friction energy in the secondary shear zone accompanied by a reduction of the chip-tool contact zone. The uncut chip thickness and cutting velocity influence the shear angle through their effect on the interface temperature and hence on the material flow stress in the secondary shear zone. The change in both parameters does not change significantly the specific shear energy in the primary shear zone. The model results are compared with the experimental results for a work material 0.18% C steel. The agreement between the predicted and experimental results is seen to be exceptionally good.
机译:第一部分中描述的混合分析有限元模型用于预测切削速度,未切削切屑厚度和两个刀具正交前角范围内的剪切角。还给出了切削条件和切削刀具几何形状对切屑刀具接触长度的影响的实验结果和经验公式。结果表明,在假定的切削条件范围内,切屑工具的接触长度/未切屑厚度比与切屑厚度/未切屑厚度比之间存在线性关系。刀具正交前角导致的剪切角的增加主要是由于主剪切区中的比剪切能减小,而次级剪切区中的比摩擦能减小,同时切屑工具接触区减小。未切削的切屑厚度和切削速度通过它们对界面温度的影响,进而对次级剪切区内的材料流动应力产生影响,从而影响剪切角。两个参数的变化不会显着改变主剪切区中的比剪切能。将模型结果与工作材料0.18%C的钢的实验结果进行了比较。预测结果与实验结果之间的一致性被认为非常好。

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