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首页> 外文期刊>Journal of Manufacturing Processes >Three-dimensional turning force prediction based on hybrid finite element and predictive machining theory considering edge radius and nose radius
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Three-dimensional turning force prediction based on hybrid finite element and predictive machining theory considering edge radius and nose radius

机译:基于混合有限元和预测加工理论的三维转动力预测考虑边缘半径和鼻径

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摘要

Cutting force provides a basis for predicting tool wear and fracture, surface quality of component, as well as vibration and power demand of machine tools during the process of turning. Based on the finite element and mechanical analysis model, a three-dimensional (3-D) cutting force prediction model with consideration given to the edge radius and the nose radius of cutting tool is proposed in this paper. Firstly, combined with cutting force experiment, 3-D cutting simulation is performed in Deform to determine the appropriate Johnson-Cook (J-C) material constitutive model, and the two-dimensional (2-D) orthogonal cutting model is simulated by applying the determined J-C model. By observing the strain rate distribution in the shear zone, the shear angle is obtained, while the nonlinear regression model of shear angle, cutting speed and cutting thickness is conducted. Then, taking into account the impact of nose radius on the cutting process, 3-D oblique cutting is converted into equivalent orthogonal cutting using the chip flow angle and the equivalent cutting edge. The method used to determine the strain rate coefficient of the second deformation zone is redefined in the modified Oxley model, and the chip forming force is calculated. Based on the Waldorf slip line field model, the plowing force generated by the edge radius is predicted. Finally, the cutting force of 3-D oblique turning is obtained by means of coordinate transformation. The proposed model is validated by the excellent consistency between the theoretical predictions and the results obtained after referencing literature data and performing experiment of cutting 304 stainless steel and Inconel 718.
机译:切割力为预测工具磨损和断裂,部件的表面质量以及机床的振动和电力需求提供了基础。基于有限元和机械分析模型,本文提出了一种考虑到边缘半径的三维(3-D)切割力预测模型和切削工具的鼻径半径。首先,与切割力实验相结合,在变形中进行3-D切割模拟以确定适当的Johnson-Cook(JC)材料本构模型,并且通过应用所确定的模拟二维(2-D)正交切割模型JC模型。通过观察剪切区中的应变速率分布,获得剪切角,而剪切角,切割速度和切割厚度的非线性回归模型。然后,考虑到鼻径对切割过程的影响,使用芯片流量角和等效切削刃将3-D倾斜切割转换成等效正交切割。用于确定第二变形区的应变速率系数的方法在改进的氧气模型中重新定义,并且计算芯片形成力。基于Waldorf滑线场模型,预测了边缘半径产生的犁力。最后,通过坐标转换获得3-D倾斜转动的切割力。所提出的模型通过理论预测和在参考文献数据和切割304不锈钢和Inconel 718的实验之后获得的理论预测和结果之间的优异一致性验证。

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