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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >A data-driven model for weld bead monitoring during the laser welding assisted by magnetic field
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A data-driven model for weld bead monitoring during the laser welding assisted by magnetic field

机译:磁场辅助激光焊接期间焊珠监测的数据驱动模型

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摘要

In this research, a data-driven model is developed to monitor the seam during the laser beam welding under the influence of an external magnetic field (LBW-AMF). Firstly, a visible LBW-AMF system is built for tracking the laser melting pool and keyhole. Then, the features of the laser melting pool and keyhole are extracted with image processing techniques. The approach for an ensemble of different neural networks which includes radial basis function neural network, back-propagation neural network, and generalized regression neural network is proposed to establish the correlations of the characteristics of the laser melting pool and keyhole and the welding seam. Finally, LBW-AMF experimental results are obtained to validate the performance of the proposed data-driven model. Results illustrate that the developed model can provide a reliable result for monitoring the weld bead, which could give guidance for controlling the processing parameters in real time to improve the weld quality for practical LBW-AMF.
机译:在该研究中,开发了一种数据驱动模型,以在外部磁场(LBW-AMF)的影响下激光束焊接期间监测接缝。首先,构建了可见的LBW-AMF系统,用于跟踪激光熔化池和钥匙孔。然后,用图像处理技术提取激光熔池和钥匙孔的特征。提出了包括径向基函数神经网络,回传播神经网络和广义回归神经网络的不同神经网络的集合的方法,以建立激光熔池和锁孔和焊缝的特性的相关性。最后,获得了LBW-AMF实验结果以验证所提出的数据驱动模型的性能。结果说明,开发的模型可以提供用于监控焊接珠的可靠结果,这可以为实时控制加工参数来控制处理参数,以改善实用的LBW-AMF的焊接质量。

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