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Euclidean Distance Based Color Image Segmentation Algorithm for Dimensional Characterization of Lack of Penetration from Weld Thermographs for On-Line Weld Monitoring in GTAW

机译:基于欧氏距离的彩色图像分割算法,用于对焊缝温度记录仪的穿透性进行尺寸表征,以便在线监测GTAW中的焊缝

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Conventional Non Destructive Testing (NDT) techniques for assessing the weld quality are applied after welding is completed. It results in wastage of time, material and manpower. These inherent limitations of the conventional welding processes can be overcome with an automated adaptive welding system to correct the deviation in the welding current and torch speed to provide defect free welds. This system requires an on-line weld-monitoring sensor, efficient image processing algorithm for defect identification and neurofuzzy control software for correlating the defect characteristics with deviations in physical parameters. Infrared Thermography is the best-suited sensor for on-line weld monitoring. It monitors the surface temperature distributions of the plates being welded and produces thermal maps called thermographs. The image processing algorithm for hot spot identification must be a generalized and standardized algorithm that works well for all different frames depicting different percentages of lack of penetration. Moreover time consumed by the algorithm must also be less to suit for on-line weld monitoring. This paper proposes an image processing algorithm that effectively identifies and quantifies the hotspot. The hot spot is then characterized using statistical moments, major axis length, minor axis length and area.
机译:焊接完成后,将使用传统的无损检测(NDT)技术评估焊接质量。这导致时间,材料和人力的浪费。传统的焊接工艺的这些固有局限性可以通过自动自适应焊接系统来克服,以校正焊接电流和焊炬速度的偏差,以提供无缺陷的焊接。该系统需要在线焊接监控传感器,用于缺陷识别的高效图像处理算法和用于将缺陷特征与物理参数偏差相关联的神经模糊控制软件。红外热成像是最适合在线焊接监控的传感器。它监视被焊接板的表面温度分布,并生成称为热图的热图。用于热点识别的图像处理算法必须是一种通用且标准化的算法,该算法必须能够很好地适用于所有描述缺少穿透百分比的不同帧。此外,算法消耗的时间也必须更少,以适合在线焊接监控。本文提出了一种有效识别和量化热点的图像处理算法。然后使用统计矩,长轴长度,短轴长度和面积来表征热点。

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