Reduction of rejections in cold rolled strip welding by intelligent analysis of image and process data

Luis Fernandez, J. Balsera, F. Rodriguez, José Manuel Mesa Fernández
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Abstract

Welding plays an important role in the metallurgic process, being a critical part of continuous processes. The early detection of welding defects is a key aspect to guarantee productivity. There are factories in which the welding testing is performed visually by an operator. In this scenario, the physiological and psychological aspects of the operator can determine the productivity due to unnecessary repetitions of welds. This paper proposes an on-line intelligent system for operator support. The goal is to reduce the unnecessary repetitions of welds. The proposed method uses data mining and machine learning techniques fed by the information extracted from the process data and from the data obtained by an infrared camera, creating an objective model that estimates the weld reliability. Flexibility and adaptability are two key concepts in the proposed design.
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通过图像和工艺数据的智能分析来减少冷轧带钢焊接中的缺陷
焊接在冶金工艺中起着重要的作用,是连续工艺的关键环节。焊接缺陷的早期发现是保证生产效率的关键环节。有些工厂的焊接试验是由操作人员目视进行的。在这种情况下,由于不必要的重复焊接,操作人员的生理和心理因素可以决定生产率。本文提出了一种操作员在线智能支持系统。目的是减少不必要的重复焊接。该方法使用数据挖掘和机器学习技术,通过从过程数据中提取的信息和红外摄像机获得的数据,创建一个客观的模型来估计焊缝的可靠性。灵活性和适应性是提出的设计中的两个关键概念。
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