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End-Point Static Control of Basic Oxygen Furnace (BOF) Steelmaking Based on Wavelet Transform Weighted Twin Support Vector Regression

机译:基于小波变换加权双胞胎支持向量回归的基本氧气炉(BOF)炼钢的终点静态控制

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摘要

A static control model is proposed based on wavelet transform weighted twin support vector regression (WTWTSVR). Firstly, new weighted matrix and coefficient vector are added into the objective functions of twin support vector regression (TSVR) to improve the performance of the algorithm. The performance test confirms the effectiveness of WTWTSVR. Secondly, the static control model is established based on WTWTSVR and 220 samples in real plant, which consists of prediction models, control models, regulating units, controller, and BOF. Finally, the results of proposed prediction models show that the prediction error bound with 0.005% in carbon content and 10°C in temperature can achieve a hit rate of 92% and 96%, respectively. In addition, the double hit rate of 90% is the best result by comparing with four existing methods. The results of the proposed static control model indicate that the control error bound with 800 Nm3 in the oxygen blowing volume and 5.5 tons in the weight of auxiliary materials can achieve a hit rate of 90% and 88%, respectively. Therefore, the proposed model can provide a significant reference for real BOF applications, and also it can be extended to the prediction and control of other industry applications.
机译:基于小波变换加权双支持向量回归(WTWTSVR)提出了一种静态控制模型。首先,将新的加权矩阵和系数矢量添加到双胞胎支持向量回归(TSVR)的目标函数中以提高算法的性能。性能测试证实了WTWTSVR的有效性。其次,静态控制模型是基于Real Plant中的WTWTSVR和220个样本建立的,由预测模型,控制模型,调节单元,控制器和BOF组成。最后,提出的预测模型的结果表明,在碳含量和10℃温度下以0.005%的预测误差分别达到92%和96%。此外,通过与四种现有方法进行比较,双击率为90%是最佳结果。所提出的静态控制模型的结果表明,在氧气发泡体积中用800nm3粘合的控制误差和辅助材料重量中的5.5吨可以分别达到90%和88%的撞击率。因此,所提出的模型可以为真实的BOF应用提供重要参考,并且还可以扩展到其他行业应用的预测和控制。

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