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Multi-objective optimization of pulsed gas metal arc welding process based on weighted principal component scores

机译:基于加权主成分分数的脉冲气体保护金属电弧焊工艺多目标优化

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摘要

Most welding processes present large sets of correlated quality characteristics. With this particularity in mind, we present a multi-objective optimization technique based on Principal Component Analysis (PCA) and response surface methodology (RSM). This two-fold technique utilizes PCA to factorize the original welding responses. The original responses - obtained through a Central Composite Design - are then replaced by the resulting principal component scores. The technique's advantage is that it reduces the data set and still considers the correlation among the responses. Quite often, however, the first principal component alone cannot explain the amount of variance-covariance structure of the welding responses. In this paper, we remedy this shortfall by proposing an objective function established in terms of the most significative principal component scores (weighted by their respective eigenvalues). Experimental results were obtained with a multiresponse pulsed gas metal arc welding process. These results, when compared with other strategies of multiresponse combination, verify the adequacy of our proposed approach.
机译:大多数焊接工艺都具有大量相关的质量特征。考虑到这种特殊性,我们提出了一种基于主成分分析(PCA)和响应面方法(RSM)的多目标优化技术。这项双重技术利用PCA来分解原始焊接响应。然后,通过中央综合设计获得的原始响应将替换为最终的主成分评分。该技术的优势在于它减少了数据集,并且仍然考虑了响应之间的相关性。然而,通常仅第一主成分不能解释焊接响应的方差-协方差结构的数量。在本文中,我们通过提出根据最有意义的主成分评分(由其各自的特征值加权)建立的目标函数来弥补这一不足。通过多响应脉冲气体保护金属电弧焊工艺获得了实验结果。这些结果与其他多响应组合策略相比,证明了我们提出的方法的适当性。

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