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Adaptive neurofuzzy predictive control of nuclear steam generators

机译:核蒸汽发生器的自适应神经模糊预测控制

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The main emphasis of this paper is the application of adaptive neurofuzzy model-based predictive control, to regulate the water level in the U-tube steam generating (UTSG) unit used for electricity generation. A nonlinear predictive controller is designed on the basis of a Takagi-Sugeno fuzzy model with B-spline membership function. By on-line adaptation of the neurofuzzy model, improvement of the control performance can be achieved with the time-variant process behaviour. For this purpose, a normalized least-square algorithm is utilized which exploits the local linearity of Takagi-Sugeno fuzzy models. An optimization approach with a quadratic programing technique is used to calculate predictions of the future control actions. The effectiveness and real-world applicability of the proposed approach are demonstrated by computer simulation. The control experiments were successfully conducted for this nonlinear process with satisfactory results and performances.
机译:本文的主要重点是基于自适应神经模糊模型的预测控制的应用,以调节用于发电的U型管蒸汽发生(UTSG)单元中的水位。基于具有B样条隶属度函数的Takagi-Sugeno模糊模型,设计了非线性预测控制器。通过神经模糊模型的在线适应,可以通过时变过程行为来实现控制性能的提高。为此,利用归一化最小二乘算法,该算法利用了Takagi-Sugeno模糊模型的局部线性。使用具有二次编程技术的优化方法来计算未来控制动作的预测。通过计算机仿真证明了该方法的有效性和实际应用性。针对该非线性过程成功进行了控制实验,结果和性能令人满意。

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