Spread prediction model of continuous steel tube based on BP neural network

According to the geometric pass of roll and technological parameters of three-roller continuous mandrel rolling mill in a factory, a finite element model is established to simulate the continuous rolling process of seamless steel tube, and the reliability of finite element model is verified by compa...

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Veröffentlicht in:IOP conference series. Materials Science and Engineering 2017-07, Vol.220 (1), p.12012
Hauptverfasser: Zhai, Jian-wei, Yu, Hui, Zou, Hai-bei, Wang, San-zhong, Liu, Li-gang
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Sprache:eng
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Zusammenfassung:According to the geometric pass of roll and technological parameters of three-roller continuous mandrel rolling mill in a factory, a finite element model is established to simulate the continuous rolling process of seamless steel tube, and the reliability of finite element model is verified by comparing with the simulation results and actual results of rolling force, wall thickness and outer diameter of the tube. The effect of roller reduction, roller rotation speed and blooming temperature on the spread rule is studied. Based on BP(Back Propagation) neural network technology, a spread prediction model of continuous rolling tube is established for training wall thickness coefficient and spread coefficient of the continuous rolling tube, and the rapid and accurate prediction of continuous rolling tube size is realized.
ISSN:1757-8981
1757-899X
DOI:10.1088/1757-899X/220/1/012012