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Internal model control using GA-NN for boiler drum

机译:使用GA-NN对锅炉鼓进行内部模型控制

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摘要

The water level system of boiler drum is a multi-disturbance complicated process. An internal model control using GA-NN for the water level system of boiler drum of the power plant is presented in this paper. The neural model of the system is identified as an estimator. Another neural network is trained to learn the inverse dynamics of the system so that it can be used as a nonlinear controller. Because of the limitation of BP algorithm, the genetic algorithm is used to find the fitness weights and thresholds of the neural network model, and the simulation results testify that the model is satisfied and the control is effective.
机译:汽包水位系统是一个多扰动的复杂过程。提出了一种基于GA-NN的电厂锅炉汽包水位系统内部模型控制方法。系统的神经模型被识别为估计量。训练了另一个神经网络以学习系统的逆动力学,以便可以将其用作非线性控制器。由于BP算法的局限性,采用遗传算法找到了神经网络模型的适应权重和阈值,仿真结果证明了该模型的有效性和控制效果。

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