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Adaptive neural network control for a class of continuous stirred tank reactor systems
Authors:DongJuan Li
Affiliation:1. School of Chemical and Environmental Engineering, Liaoning University of Technology, Jinzhou, 121001, China
Abstract:In this paper, the control problem of continuous stirred tank reactors (CSTR) is studied. The considered CSTR are required to contain unknown functions and unknown dead zone input. An adaptive controller that uses the neural networks (NNs) is provided to solve the unknown terms. The proposed approach overcomes the effect of the dead zone input. The dead zone input in the systems is compensated for by introducing a new Lyapunov form and Young’s inequality. The backstepping procedure is exploited to implement controller design with adaptation laws. The stability is analyzed using Lyapunov method. The performance is examined for CSTR to confirm the effectiveness of the proposed approach based on computer simulation.
Keywords:adaptive neural network control  CSTR systems  nonlinear dead-zone systems  the tracking design  NN approximator
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