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On neural tuner application to adjust speed P-controller of rolling mill main DC drive

机译:神经调谐器在轧机主直流传动调速P控制器上的应用

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Mechanics nonlinearity of such a complicated plant as rolling mill leads to deterioration of transients quality for a main drive speed control loop. A main reason for that is linearity of P-control algorithm used for this loop. That problem can be overcome by controller parameter adaptation algorithms usage. In this research we propose to adjust speed P-controller online using a neural tuner. It is implemented as a combination of an artificial neural network, which output is KP, and a rule base. The base reflects an automation engineer experience and allows to determine situations when the controller is to be adjusted, i.e. when to train the network. It also contains appropriate learning rate for the neurons of the network, which takes into account the nonlinearity of the plant. Numerical experiments are conducted using the model of the considered plant main drive. They are divided in two parts. The first one includes experiments, when the tuner task is to tune nonoptimal speed controller parameter back to the calculated one. The second one is made for the case of plant mechanical part parameters drift. The results show that neural tuner application allows to decrease energy consumption of considered DC drive by 1.9% in comparison with P-controller without adaptation.
机译:诸如轧机之类的复杂工厂的机械非线性会导致主驱动速度控制回路的瞬态质量下降。主要原因是用于此循环的P控制算法的线性。该问题可以通过控制器参数自适应算法的使用来克服。在这项研究中,我们建议使用神经调谐器在线调整速度P控制器。它由输出为KP的人工神经网络和规则库的组合实现。该基础反映了自动化工程师的经验,并允许确定何时需要调整控制器,即何时训练网络。它还包含网络神经元的适当学习率,其中考虑了植物的非线性。使用所考虑的工厂主驱动器的模型进行了数值实验。它们分为两个部分。第一个包括实验,当调谐器任务是将非最佳速度控制器参数调整回计算得出的参数时。第二个是针对工厂机械零件参数漂移的情况。结果表明,与不带自适应功能的P控制器相比,神经调谐器的应用使所考虑的DC驱动器的能耗降低了1.9%。

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