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Audio sensing and modeling of arc dynamic characteristic during pulsed Al alloy GTAW process

机译:铝合金GTAW脉冲过程中电弧动态特性的音频传感和建模

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Purpose - The purpose of this paper is to study the relationship between arc sound signal and arc height through arc sound features of GTAW welding, which is aimed at laying foundation work for monitoring the welding penetration and quality by using the arc sound signal in the future. Design/methodology/ approach - The experiment system is based on GTAW welding with acoustic sensor and signal conditioner on it. The arc sound signal was first processed by wavelet analysis and wavelet packet analysis designed in this research. Then the features of arc sound signal were extracted in time domain, frequency domain, for example, short-term energy, AMDF, mean strength, log energy, dynamic variation intensity, short-term zero rate and the frequency features of DCT coefficient, also the wavelet packet coefficient. Finally, a ANN (artificial neural networks) prediction model was built up to recognize different arc height through arc sound signal. Findings - The statistic features and DCT coefficient can be absolutely used in arc sound signal processing; and these features of arc sound signal can accurately react the modification of arc height during the GTAW welding process. Originality/value - This paper tries to make a foundation work to achieve monitoring arc length through arc sound signal. A new way to remove high frequency noise of arc sound signal is produced. It proposes some effective statistic features and a new way of frequency analysis to build the prediction model.
机译:目的-本文的目的是通过GTAW焊接的电弧声特征研究电弧声信号与电弧高度之间的关系,旨在为将来使用电弧声信号来监测焊缝熔深和质量奠定基础。 。设计/方法/方法-实验系统基于GTAW焊接,上面装有声学传感器和信号调节器。首先通过本研究设计的小波分析和小波包分析处理电弧声信号。然后在时域,频域中提取电弧声信号的特征,例如短期能量,AMDF,平均强度,对数能量,动态变化强度,短期零率以及DCT系数的频率特征。小波包系数。最后,建立了人工神经网络(ANN)预测模型,通过电弧声信号识别不同的电弧高度。结果-统计特征和DCT系数可以绝对用于弧声信号处理;电弧声信号的这些特征可以在GTAW焊接过程中准确地响应电弧高度的变化。创意/价值-本文试图通过电弧声信号来实现监测电弧长度的基础工作。提出了一种消除电弧声信号高频噪声的新方法。提出了一些有效的统计特征和频率分析的新方法来建立预测模型。

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