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Online qualitative nugget classification by using a linear vector quantization neural network for resistance spot welding

机译:线性矢量量化神经网络在线定性金块电阻点焊

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摘要

Real-time estimation of weld quality from process data is one of the key objectives in current weld control systems for resistance spot-welding processes. This task can be alleviated if the weld controller is equipped with a voltage sensor in the secondary circuit. Replacing the goal of quantifying the weld quality in terms of button size by the more modest objective of indirect estimation of the class of the weld, e.g., satisfactory (acceptable, "normal" button size), unsatisfactory (undersized, "cold" welds), and defects ("expulsion"), further improves the feasibility of the mission of indirect estimation of the weld quality. This paper proposes an algorithmic framework based on a linear vector quantization (LVQ) neural network for estimation of the button size class based on a small number of dynamic resistance patterns for cold, normal, and expulsion welds that are collected during the stabilization process. Nugget quality classification by using an LVQ network was tested on two types of controllers; medium-frequency direct current (MFDC) with constant current controller and alternating current (AC) with constant heat controller. In order to reduce the dimensionality of the input data vector, different sets of features are extracted from thedynamic resistance profile and are compared by using power of the test criteria. The results from all of these investigations are very promising and are reported here in detail.
机译:从工艺数据实时估计焊接质量是当前用于电阻点焊工艺的焊接控制系统的主要目标之一。如果焊接控制器在次级电路中配备了电压传感器,则可以减轻此任务。通过间接估计焊缝类别的较为适度的目标代替按纽扣尺寸来量化焊接质量的目标,例如,满意(可接受的“正常”纽扣尺寸),不满意(尺寸过小,“冷”焊缝)和缺陷(“排出”),进一步提高了间接估算焊接质量的任务的可行性。本文提出了一种基于线性矢量量化(LVQ)神经网络的算法框架,用于基于稳定过程中收集的少量冷,普通和排焊动态阻力模式来估算按钮尺寸类别。在两种类型的控制器上测试了使用LVQ网络进行的金块质量分类。带恒定电流控制器的中频直流电(MFDC)和带恒定热量控制器的交流电(AC)。为了降低输入数据向量的维数,从动态阻力轮廓中提取了不同的特征集,并使用测试标准的功效对其进行比较。所有这些调查的结果都非常有希望,并在此处详细报告。

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