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Neural network prediction of the shunt current in resistance spot welding
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作者 张勇 谢红霞 +3 位作者 滕辉 白华 鄢君辉 汪帅兵 《China Welding》 EI CAS 2013年第3期73-78,共6页
An error back propagation (BP) neural network prediction model was established for the shunt current compensation in series resistance spot welding. The input variables for the neural network consist of the resistiv... An error back propagation (BP) neural network prediction model was established for the shunt current compensation in series resistance spot welding. The input variables for the neural network consist of the resistivity of the material, the thickness of workpiece and the spot spacing, and the shunt rate is outputted. A simplified calculation for the shunt rate was presented based on the feature of the constant-current resistance spot welding and the variation of the resistance in resistance spot welding process, and then the data generated by simplified calculation were used to train and adjust the neural network model. The neural network model proposed was used to predict the shunt rate in the spot welding of 20# mlid steel (in Chinese classification) (in 2. 0 mm thickness) and 10# mild steel (in 1.5 mm and 1.0 mm thickness). The maximum relative prediction errors are, respectively, 2. 83%, 1.77% and 3.67%. Shunt current compensation experiments were peoCormed based on the neural network prediction model proposed to check the diameter difference of nuggets. Experimental results show that maximum nugget diameter deviation is less than 4% for both 10# and 20# mlid steels with spot spacing of 30 mm and 50 mm. 展开更多
关键词 resistance spot welding constant current control shunt current neural network prediction model NUGGET
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B2结构纳米晶Ru_(40)Al_(60)和Ru的制备 被引量:3
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作者 许应凡 E.Ivanov +1 位作者 隅山兼治 铃木谦尔 《科学通报》 EI CAS CSCD 北大核心 1996年第16期1454-1456,共3页
纳米晶材料由于其物理特性显著不同于常规粗晶材料而引起人们的极大兴趣和受到广泛重视。近年来,人们发现机械合金化是制备纳米晶的最有效方法之一,通过强烈的机械形变和破碎,可以容易地得到极细的晶粒。最近。
关键词 B2结构 纳米晶 机械合金化 钌铝合金
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