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Prediction of weld bead geometry and penetration in shielded metal-arc welding using artificial neural networks

机译:使用人工神经网络预测金属电弧焊中焊缝的几何形状和熔深

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摘要

Bead geometry (bead height and width) and penetration (depth and area) are important physical characteristics of a weldment. Several welding parameters seem to affect the bead geometry and penetration. It was observed that high arc-travel rate or low arc-power normally produced poor fusion. Higher electrode feed rate produced higher bead width making the bead flatter.Current, voltage and arc-travel rate influence the depth of penetration. The other factors that influence the penetration are heat conductivity, arc-length and arc-force. Longer arc-length produces shallower penetration. Too small arc-length may also give rise to poor penetration, if the arc-power is very low.Use of artificial neural networks to model the shielded metal-arc welding process is explored in this paper back-propagation neural networks are used to associate the welding process variables with the features of the bead geometry and penetration. These networks have achieved good agreement with the training data and have yielded satisfactory generalisation. A neural network could be effectively implemented for estimating the weld bead and penetration geometric parameters. The results of these experiments show a small error percentage difference between the estimated and experimental values.
机译:焊缝几何形状(焊缝高度和宽度)和熔深(深度和面积)是焊件的重要物理特征。几个焊接参数似乎会影响焊缝的几何形状和熔深。观察到高的电弧行进速率或低的电弧功率通常产生差的熔合。较高的电极进给速度会产生较大的焊缝宽度,从而使焊缝变平。电流,电压和电弧行进速度会影响焊透深度。影响渗透的其他因素是导热率,电弧长度和电弧力。较长的电弧长度会产生较浅的穿透力。如果电弧功率很低,那么电弧长度太小也可能导致较差的熔深。本文探讨了使用人工神经网络对金属电弧焊的屏蔽过程进行建模,并将反向传播神经网络用于关联具有焊缝几何形状和熔深特征的焊接工艺变量。这些网络已经与训练数据达成了良好的协议,并获得了令人满意的概括。可以有效地使用神经网络来估计焊缝和熔深几何参数。这些实验的结果表明,估计值和实验值之间的误差百分比差异很小。

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