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Neural network and support vector machine predictive control of tert-amyl methyl ether reactive distillation column

机译:叔戊基甲基醚反应精馏塔的神经网络和支持向量机预测控制

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An algorithm of model predictive control based on artificial neural network and least-square support vector machine method is presented for a class of industrial process with strong nonlinearity such as tert -amyl methyl ether (TAME). Integral constant is added to improve the performance of the controller. In the present work, two different control methodologies neural network predictive control (NNPC) and support vector machine-based predictive control (SVMPC) are implemented and compared with a conventional proportional-integral-derivative (PID) control methodology to a TAME reactive distillation column. The simulation result shows that both NNPC and SVMPC gives better control performance than PID for set-point change as well as for load change of±10% in methanol feed flow rate and molar ratio of methanol to isoamylene in reactor effluent feed.
机译:针对一类具有强非线性的工业过程,如叔戊基甲基醚(TAME),提出了一种基于人工神经网络和最小二乘支持向量机方法的模型预测控制算法。添加了积分常数以提高控制器的性能。在本工作中,实现了两种不同的控制方法,即神经网络预测控制(NNPC)和基于支持向量机的预测控制(SVMPC),并将其与传统的比例-积分-微分(PID)控制方法进行比较,以用于TAME反应蒸馏塔。仿真结果表明,NNPC和SVMPC在设定点变化以及在甲醇进料流量和反应器进料中甲醇与异戊烯的摩尔比为±10%的负荷变化方面,均具有比PID更好的控制性能。

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