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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Data-Driven Optimal Control for Pulp Washing Process Based on Neural Network
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Data-Driven Optimal Control for Pulp Washing Process Based on Neural Network

机译:基于神经网络的纸浆洗涤过程的数据驱动最优控制

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摘要

Pulp washing process has the features of multivariate, time delay, nonlinearity. Considering the difficulties of modeling and optimal control in pulp washing process, a data-driven operational-pattern optimization method is proposed to model and optimize the pulp washing process in this paper. The most important quality indexes of pulp washing performance are residual soda in the washed pulp and Baume degree of extracted black liquor. Considering the difficulties of modeling, online measurement of these indexes, two-step neural networks, and multivariate logistic regression are used to establish the prediction models of residual soda and Baume degree. The mathematical model of the washing process can be identified, and the indexes can meet the production requirements. In the target of better product quality, low cost, and low energy consumption, a multiobjective problems is solved by ant colony optimization algorithm based on the optimized operational-pattern database. It shows that the theoretical analyses are correct and the practical applications are feasible, optimization control system has been designed for the pulp washing process, and the practical results show that pulp production increased by 20% and water consumption decreased by nearly 30%. This method is effective in the pulp washing process.
机译:纸浆洗涤过程具有多变量,时间延迟,非线性的特征。考虑到纸浆洗涤过程中建模和最佳控制的困难,提出了一种数据驱动的操作模式优化方法,以模拟和优化本文的纸浆洗涤过程。纸浆洗涤性能最重要的质量指标是洗涤纸浆中残留的苏打水和提取的黑液中的Baume。考虑到建模的困难,这些指标的在线测量,两步神经网络和多变量逻辑回归用于建立残留苏打水和宝光度的预测模型。可以识别洗涤过程的数学模型,并且索引可以满足生产要求。在更好的产品质量,低成本和低能耗的目标中,基于优化的操作模式数据库通过蚁群优化算法解决了多目标问题。它表明理论分析是正确的,实际应用是可行的,优化控制系统专为纸浆洗涤过程而设计,并且实际结果表明,纸浆产量增加了20%,水消耗降低了近30%。该方法在纸浆洗涤过程中是有效的。

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