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Sensoring Fusion Data from the Optic and Acoustic Emissions of Electric Arcs in the GMAW-S Process for Welding Quality Assessment

机译:在GMAW-S工艺中从电弧光和声发射中感测融合数据以进行焊接质量评估

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摘要

The present study shows the relationship between welding quality and optical-acoustic emissions from electric arcs, during welding runs, in the GMAW-S process. Bead on plate welding tests was carried out with pre-set parameters chosen from manufacturing standards. During the welding runs interferences were induced on the welding path using paint, grease or gas faults. In each welding run arc voltage, welding current, infrared and acoustic emission values were acquired and parameters such as arc power, acoustic peaks rate and infrared radiation rate computed. Data fusion algorithms were developed by assessing known welding quality parameters from arc emissions. These algorithms have showed better responses when they are based on more than just one sensor. Finally, it was concluded that there is a close relation between arc emissions and quality in welding and it can be measured from arc emissions sensing and data fusion algorithms.
机译:本研究显示了在GMAW-S工艺过程中,焊接质量与焊接过程中电弧光声发射之间的关系。使用从制造标准中选择的预设参数进行了在板上的焊缝焊道测试。在焊接过程中,由于油漆,油脂或气体故障而在焊接路径上产生干扰。在每个焊接运行中,获取电弧电压,焊接电流,红外和声发射值,并计算诸如电弧功率,声峰值率和红外辐射率等参数。通过根据电弧发射评估已知的焊接质量参数来开发数据融合算法。当这些算法基于多个传感器时,它们表现出更好的响应。最后,得出的结论是,电弧发射与焊接质量之间存在密切关系,可以通过电弧发射感应和数据融合算法进行测量。

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