基于动态电阻评估 BH 340 钢连续电阻点焊中的电极特性

IF 3.3 Q2 ENGINEERING, MANUFACTURING
Dawei Zhao, Nikita Vdonin, Mihail Slobodyan, Sergei Butsykin, Alexey Kiselev, A. Gordynets
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引用次数: 0

摘要

本研究的目的是提供一种基于数据的方案来预测电阻点焊中电极的磨损。电极磨损和合金化是影响点焊力学性能和焊缝质量变化的主要因素之一。本研究利用附着在上下电极上的Rogowski线圈和双绞线获得焊接过程中的焊接电流和电极间的电压,从而计算焊接过程中的动态电阻值。电极尖端直径由切断电流时上下电极对碳纸施加的压力得到,作为电极磨损的指标。通过连续焊接0.5 mm厚的bh340钢板直至电极失效,实时记录动态电阻信号。同时,还记录了每几次焊接后的电极直径。在此基础上,研究了电极尖端直径与动态电阻的关系。为了定量研究动态电阻与电极磨损之间的映射关系,从动态电阻中提取10个特征值,采用逐步回归方法得到特征值与电极尖端直径之间的回归公式。利用新数据验证回归模型的有效性,得到的结果表明:采用交互二次项回归方程得到的电极尖端直径预测值与实测值之间的最大误差为0.3 mm,相对误差为7.69%。采用新电极对焊接时,根据带交互项的线性回归模型,模型预测的最大绝对误差为0.72 mm,相对误差在20%以内。这表明该回归模型对电极状态的监测几乎是令人满意的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessing Electrode Characteristics in Continuous Resistance Spot Welding of BH 340 Steel Based on Dynamic Resistance
The aim of this investigation is to offer a data-based scheme for predicting electrode wear in resistance spot welding. One of the major factors affecting the mechanical properties of spot welds and the variation in weld quality is electrode wear and alloying. In this study, Rogowski coils and twisted pairs attached to the top and bottom electrodes were used to obtain the welding current and the voltage between the electrodes in the welding process, thereby calculating the dynamic resistance value during the welding process. The electrode tip diameter was obtained from the pressure exerted by the upper and lower electrodes on the carbon paper when the current was cut off and was regarded as an indicator of electrode wear. By continuously welding 0.5 mm thick BH 340 steel plates until the electrode failed, the dynamic resistance signal was recorded in real time. Simultaneously, the electrode diameter after every several welds was also recorded. On this basis, the correlation between electrode tip diameter and dynamic resistance is studied. In order to quantitatively study the mapping relationship between dynamic resistance and electrode wear, 10 characteristic values were extracted from the dynamic resistance, and the stepwise regression method was used to obtain the regression formula between the characteristic values and the electrode tip diameter. Using new data to verify the effectiveness of the regression model, the acquired results display that the maximum error between the predicted value of the electrode tip diameter and the measured value obtained by the regression equation with the interactive quadratic term is 0.3 mm, and the corresponding relative error is 7.69%. When welding with a new pair of electrodes, the maximum absolute error was 0.72 mm, and the relative error of the model prediction is within 20% according to the linear regression model with interaction terms. This indicates that this regression model is barely satisfactory for monitoring electrode condition.
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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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