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Identification and predictive control of a multistage evaporator

机译:多级蒸发器的识别和预测控制

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A recurrent neural network-based nonlinear model predictive control (NMPC) scheme in parallel with PI control loops is developed for a simulation model of an industrial-scale five-stage evaporator. Input-output data from system identification experiments are used in training the network using the Levenberg-Marquardt algorithm with automatic differentiation. The same optimization algorithm is used in predictive control of the plant. The scheme is tested with set-point tracking and disturbance rejection problems on the plant while control performance is compared with that of PI controllers, a simplified mechanistic model-based NMPC developed in previous work and a linear model predictive controller (LMPC). Results show significant improvements in control performance by the new parallel NMPC-PI control scheme.
机译:针对工业级五级蒸发器的仿真模型,开发了与PI控制回路并行的基于递归神经网络的非线性模型预测控制(NMPC)方案。来自系统识别实验的输入输出数据用于通过具有自动微分的Levenberg-Marquardt算法训练网络。在工厂的预测控制中使用了相同的优化算法。该方案已在工厂进行了设定点跟踪和干扰抑制问题测试,同时将控制性能与PI控制器,先前工作中开发的基于简化机械模型的NMPC和线性模型预测控制器(LMPC)进行了比较。结果表明,新的并行NMPC-PI控制方案显着改善了控制性能。

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