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Model predictive control and neural network predictive control of TAME reactive distillation column

机译:TAME反应精馏塔的模型预测控制和神经网络预测控制

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摘要

Model predictive control (MPC) is an advantageous methodology to control the nonlinear processes such as tert-amyl methyl ether (TAME). Multiple reactions of the system make the synthesis of the TAME process more complicated which exhibits highly nonlinear behavior. The need to handle such difficult control problem has led to use neural network in MPC. In the present work, three different control strategies, viz., conventional PID control, model predictive control and neural network predictive control (NNPC) are implemented to aTAME reactive distillation column (RDC). All these controllers are compared and it is found that NNPC and MPC give smoother and better control performance than the PID controller for both set point change and ?0% load change in feed flow rate of methanol.
机译:模型预测控制(MPC)是控制非线性过程(例如叔戊基甲基醚(TAME))的一种有利方法。系统的多个反应使TAME过程的合成更加复杂,从而表现出高度的非线性行为。处理这种困难的控制问题的需要已导致在MPC中使用神经网络。在当前工作中,将三种不同的控制策略,即常规PID控制,模型预测控制和神经网络预测控制(NNPC)实施到TAME反应精馏塔(RDC)。对所有这些控制器进行了比较,发现对于设定点变化和甲醇进料流量的≤0%负载变化,NNPC和MPC的控制性能均比PID控制器更平滑和更好。

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