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MULTI-OBJECTIVE OPTIMIZATION OF THE CUTTING FORCES IN TURNING OPERATIONS USING THE GREY-BASED TAGUCHI METHOD

机译:基于灰度的Taguchi方法在车削加工中切削力的多目标优化

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This study investigated the multi-response optimization of the turning process for an optimal parametric combination to yield the minimum cutting forces and surface roughness with the maximum material-removal rate (MRR) using a combination of a Grey relational analysis (GRA) and the Taguchi method. Nine experimental runs based on an orthogonal array of the Taguchi method were performed to derive objective functions to be optimized within the experimental domain. The objective functions were selected in relation to the parameters of the cutting process: cutting force, surface roughness and MRR. The Taguchi approach was followed by the Grey relational analysis to solve the multi-response optimization problem. The significance of the factors on the overall quality characteristics of the cutting process was also evaluated quantitatively using the analysis-of-variance method (ANOVA). Optimal results were verified through additional experiments. This shows that a proper selection of the cutting parameters produces a high material-removal rate with a better surface roughness and a lower cutting force.
机译:这项研究结合了灰色关联分析(GRA)和田口(Taguchi)的研究,研究了车削过程的多响应优化,以优化参数组合以产生最小的切削力和表面粗糙度,并实现最大的材料去除率(MRR)。方法。基于Taguchi方法的正交数组进行了9次实验,得出了在实验范围内要优化的目标函数。根据切削过程的参数选择目标函数:切削力,表面粗糙度和MRR。在Taguchi方法之后,进行了灰色关联分析,以解决多响应优化问题。还使用方差分析法(ANOVA)定量评估了这些因素对切削过程的整体质量特征的重要性。通过其他实验验证了最佳结果。这表明适当选择切削参数会产生较高的材料去除率,并具有更好的表面粗糙度和更低的切削力。

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