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A neural network approach to the control of the plate width in hot plate mills

机译:神经网络方法控制热板轧机中的板宽

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Deviation of a slab width from the desired value in hot plate mills has caused significant yield loss by trimming and led to a demand for tighter width tolerances of rolled plates. This necessitates vertical rolling with considerable width accuracy. In this paper, a slab width control system is proposed in order to meet the stringent requirement on the plate dimensional tolerance. The control system adopts a multilayer perceptron neural network to account for the complicated process dynamics characterized by nonlinear, time-varying and uncertain properties. A series of simulation works were conducted to evaluate the performance of the proposed control system for various operating conditions and networks design parameters. The control performance is analyzed in detail in terms of the system response accuracy and robustness to rolling temperature variation.
机译:在热板轧机中,板坯宽度与期望值的偏差已导致通过修整而导致明显的产量损失,并导致对轧制板的宽度公差要求更严格。这需要以相当大的宽度精度进行垂直轧制。为了满足对板尺寸公差的严格要求,提出了板坯宽度控制系统。该控制系统采用多层感知器神经网络来解决具有非线性,时变和不确定特性的复杂过程动力学问题。进行了一系列仿真工作,以评估所提出的控制系统在各种工况和网络设计参数下的性能。根据系统响应精度和对轧制温度变化的鲁棒性,对控制性能进行了详细分析。

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