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首页> 外文期刊>IEEE Transactions on Energy Conversion >Neuro-Fuzzy Generalized Predictive Control of Boiler Steam Temperature
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Neuro-Fuzzy Generalized Predictive Control of Boiler Steam Temperature

机译:锅炉蒸汽温度的神经模糊广义预测控制

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摘要

Reliable control of superheated steam temperature is necessary to ensure high efficiency and high load-following capability in the operation of modern power plant. This is often difficult to achieve using conventional PI controllers, as power plants are nonlinear and contain many uncertainties. A nonlinear generalized predictive controller based on neuro-fuzzy network (NFGPC) is proposed in this paper, which consists of local GPCs designed using the local linear models of the neuro-fuzzy network that models the plant. The proposed nonlinear controller is applied to control the superheated steam temperature of a 200-MW power plant. From the experiments on the plant and the simulation of the plant, much better performance than the traditional cascade PI controller or the linear GPC is obtained
机译:为了确保现代电厂运行中的高效率和高负荷跟随能力,必须可靠地控制过热蒸汽的温度。由于发电厂是非线性的并且包含许多不确定性,因此使用常规的PI控制器通常很难做到这一点。提出了一种基于神经模糊网络(NFGPC)的非线性广义预测控制器,该控制器由使用神经模糊网络的局部线性模型设计的局部GPC组成。所提出的非线性控制器被应用于控制200兆瓦电厂的过热蒸汽温度。通过工厂的实验和工厂的模拟,可以获得比传统的级联PI控制器或线性GPC更好的性能。

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