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Online Weld Quality Benchmarking and Assurance during the Mass-production Resistance Spot Welding Process

机译:在线焊接质量基准和保证在大规模生产电阻点焊过程中

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Nowadays online quality estimation for the resistance spot welding (RSW) has benefited a lot from monitoring the electrode displacement caused by nugget thermal expansion. Based on these emerging monitoring techniques a new approach is proposed to classify the weld quality and assure the quality for mass-produced weld group, which enables the continuous quality improvement concept during the welding process. A causal models are built with the offline trained Bayesian Belief Networks (BBN). It is a weld quality assessment net reveals the dependency of the weld quality on the features displayed by the displacement curve, which can be used for overdesigning the safety welds or as the probabilistic forecasting model for online weld quality assessment. The experimental results show that the proposed approach is valid and feasible to predict the weld quality and assure the overall quality for weld group in real applications.
机译:如今,电阻点焊(RSW)的在线质量估计受益于监测由掘金热膨胀引起的电极位移。基于这些新兴的监测技术,提出了一种新的方法来对焊接质量进行分类,并确保大规模生产的焊接组质量,这使得焊接过程中的连续质量改善概念能够实现。随着离线训练培训的贝叶斯信仰网络(BBN)建造了一个因果模型。它是一种焊接质量评估网,揭示焊接质量对位移曲线显示的特征上的依赖性,可用于过度设计安全焊接或作为在线焊接质量评估的概率预测模型。实验结果表明,该方法有效,可行的,可预测焊接质量,并确保真实应用中焊接组的整体质量。

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