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Optimal Machining Strategy Selection in Ball-End Milling of Hardened Steels for Injection Molds

机译:用于注射模具的硬化钢球螺母铣削中最佳加工策略选择

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摘要

In the present study, the groups of cutting conditions that minimize surface roughness and its variability are determined, in ball-end milling operations. Design of experiments is used to define experimental tests performed. Semi-cylindrical specimens are employed in order to study surfaces with different slopes. Roughness was measured at different slopes, corresponding to inclination angles of 15°, 45°, 75°, 90°, 105°, 135° and 165° for both climb and conventional milling. By means of regression analysis, second order models are obtained for average roughness Ra and total height of profile Rt for both climb and conventional milling. Considered variables were axial depth of cut ap, radial depth of cut ae, feed per tooth fz, cutting speed vc, and inclination angle Ang. The parameter ae was the most significant parameter for both Ra and Rt in regression models. Artificial neural networks (ANN) are used to obtain models for both Ra and Rt as a function of the same variables. ANN models provided high correlation values. Finally, the optimal machining strategy is selected from the experimental results of both average and standard deviation of roughness. As a general trend, climb milling is recommended in descendant trajectories and conventional milling is recommended in ascendant trajectories. This study will allow the selection of appropriate cutting conditions and machining strategies in the ball-end milling process.
机译:在本研究中,在球端铣削操作中确定了最小化表面粗糙度及其可变性的切割条件组。实验设计用于定义进行的实验测试。采用半圆柱标本,以研究具有不同斜坡的表面。在不同的斜坡上测量粗糙度,对应于15°,45°,75°,90°,105°,135°和165°的倾斜角度,用于爬升和常规研磨。通过回归分析,获得二阶模型,用于平均粗糙度Ra和概况RT的总高度,用于爬升和常规研磨。被认为变量是切割AP的轴向深度,切割AE的径向深度,每个齿FZ,切割速度Vc和倾斜角ang。参数AE是回归模型中RA和RT最重要的参数。人工神经网络(ANN)用于获得RA和RT的模型,作为相同变量的函数。 ANN模型提供了高相关值。最后,选择最佳加工策略从平均和标准偏差的实验结果中选择了粗糙度的实验结果。作为一般趋势,建议在后代轨迹中推荐爬研磨,并在上升轨迹中推荐常规铣削。本研究将允许在球端铣削过程中选择适当的切割条件和加工策略。

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