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首页> 外文期刊>IEEE transactions on industrial informatics >Multisensor Fusion System for Monitoring High-Power Disk Laser Welding Using Support Vector Machine
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Multisensor Fusion System for Monitoring High-Power Disk Laser Welding Using Support Vector Machine

机译:支持向量机的大功率圆盘激光焊接监控多传感器融合系统

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摘要

In order to optimize the productivity of industrial manufacturing, a multisensor fusion system based on support vector machine (SVM) was researched to monitor and identify weld defects during high-power disk laser welding. Three different sensing technologies were integrated: 1) photodiode sensing for the monitoring of visible light radiation, which was generated from laser focus position; 2) ultraviolet and visible (UVV) sensing for plume and molten pool; and 3) visual sensing based on auxiliary illumination for the monitoring of the dynamic behavior of molten pool and keyhole. Time and frequency domains of the features that were extracted from the sensors constituted the eigenvector used for SVM classification. Experimental results showed that the integration of photodiode and visual sensing provided a more accurate and comprehensive estimation on the laser welding process. The proposed SVM-based approach has been proven to be efficient for inspecting defects in the laser welding process.
机译:为了优化工业制造的生产率,研究了一种基于支持向量机(SVM)的多传感器融合系统,以监测和识别大功率圆盘激光焊接过程中的焊接缺陷。集成了三种不同的传感技术:1)光电二极管传感,用于监视可见光辐射,该可见光辐射是由激光焦点位置产生的; 2)紫外线和可见光(UVV)感应羽流和熔池; 3)基于辅助照明的视觉传感,用于监测熔池和锁孔的动态行为。从传感器提取的特征的时域和频域构成了用于SVM分类的特征向量。实验结果表明,光电二极管和视觉传感的集成为激光焊接工艺提供了更准确,更全面的估计。事实证明,所提出的基于SVM的方法对于检查激光焊接过程中的缺陷非常有效。

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