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首页> 外文期刊>International Journal of Manufacturing, Materials and Mechanical Engineering >Multivariate Optimization of the Cutting Parameters when Turning Slender Components
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Multivariate Optimization of the Cutting Parameters when Turning Slender Components

机译:车削细长零件时切削参数的多元优化

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摘要

The geometric features of the workpiece and the cutting parameters considerably affect the quality of a finished part subjected to any machining operation owing to the imposed elastic and plastic deformations, especially when slender components are produced. This work is focused on the influence of the workpiece slenderness ratio and cutting parameters on the quality of the machined part, assessed in terms of surface roughness and both geometric (run-out) and dimensional (diameter) deviations. Turning tests with coated tungsten carbide tools were performed using AISI 1045 medium carbon steel as work material. Differently from the published literature, a statistical analysis based on the multivariate one-way analysis of variance (MANOVA) was applied to the data obtained using a Box-Behnken experimental design. In order to identify the combination of parameters (slenderness ratio, cutting speed, feed rate and depth of cut) levels which simultaneously optimize the responses of interest (surface roughness, run-out and diameter deviation), a multivariate optimization method based on principal component analysis (PCA) and generalizedreduced gradient (GRG) was employed.
机译:由于所施加的弹性和塑性变形,工件的几何特征和切削参数会极大地影响经受任何机加工操作的成品的质量,尤其是在生产细长部件时。这项工作的重点是通过表面粗糙度以及几何(跳动)和尺寸(直径)偏差评估工件细长比和切削参数对加工零件质量的影响。使用AISI 1045中碳钢作为工作材料,执行了带涂层碳化钨工具的车削测试。与已发表的文献不同,将基于多元单向方差分析(MANOVA)的统计分析应用于使用Box-Behnken实验设计获得的数据。为了确定参数(细长比,切削速度,进给速度和切削深度)的组合,同时优化目标响应(表面粗糙度,跳动和直径偏差),一种基于主成分的多元优化方法分析(PCA)和广义降低梯度(GRG)。

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