Intelligent control model of secondary cooling in continuous slab casting
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摘要: 以縮小連鑄二冷區板坯表面實際溫度和目標溫度的差異為目標,建立了板坯連鑄二次冷卻智能控制模型.該模型采用支持向量機(SVM)實現板坯表面目標溫度的動態設定,采用對角遞歸神經網絡(DRNN)實現板坯表面溫度的預測,采用T-S模糊遞歸神經網絡實現二次冷卻水動態調整與分配.通過對某鋼廠板坯連鑄過程進行仿真計算和現場試驗,結果表明:該模型將二次冷卻水水量控制問題與板坯在冷卻過程中的溫度狀態相結合,實現了連鑄二次冷卻動態優化控制,有利于提高板坯的質量.Abstract: An intelligent control model of secondary cooling in continuous slab casting was presented to reduce the difference between actual temperature and target temperature at the surface of slabs during secondary cooling. The model dynamically sets the target temperature at the surface of slabs with support vector machine, forecasts the surface temperature of slabs with diagonal recurrent neural network, and dynamically controls and distributes the water flow of secondary cooling with T-S fuzzy recurrent neural network. Simulation calculation and field test were performed on the process of continuous slab casting in a steel plant. It is shown that the model integrates the problem of controlling the water flow of secondary cooling with the temperature state of slabs during the cooling process, can achieve the dynamic optimum control of secondary cooling and improve the quality of slabs.
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