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首页> 外文期刊>Journal of intelligent & fuzzy systems: Applications in Engineering and Technology >Fuzzy optimization control for NOx emissions from power plant boilers based on nonlinear optimization
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Fuzzy optimization control for NOx emissions from power plant boilers based on nonlinear optimization

机译:基于非线性优化的电厂锅炉氮氧化物排放模糊优化控制

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摘要

Combustion optimization adjustment can effectively suppress NOx emissions from power plant boilers. Current combustion optimization adjustment methods involve nonlinear optimization based on the boiler combustion model, such as optimization by a genetic algorithm or particle swarm algorithm. The computational complexity of these methods results in poor real-time performance, which limits their practical applications. To solve this problem, a fuzzy optimization control method with better real-time performance is proposed. First, the space of the disturbance variables (DV), which are the input variables that combustion systems cannot adjust, is divided into a certain number of sub-spaces. Each sub-space center is then obtained using the corresponding optimal combustion mode by offline nonlinear optimization, thereby forming a complete expert rule base. The corresponding optimal manipulated variables (MV), which are the input variables that combustion systems can adjust, are then quickly obtained online by means of fuzzy inference for each inputted DV. The fuzzy optimization control of boiler combustion adjustment is then determined. Simulation has shown that both the fuzzy optimization control method and the nonlinear optimization method can achieve a consistent control effect. However, the fuzzy optimization control method has a better real-time performance.
机译:燃烧优化调整可有效抑制电厂锅炉的NOx排放。当前的燃烧优化调整方法涉及基于锅炉燃烧模型的非线性优化,例如通过遗传算法或粒子群算法的优化。这些方法的计算复杂性导致实时性能差,这限制了它们的实际应用。针对这一问题,提出了一种实时性更好的模糊优化控制方法。首先,将作为燃烧系统无法调节的输入变量的扰动变量(DV)的空间划分为一定数量的子空间。然后,通过离线非线性优化,使用相应的最佳燃烧模式获得每个子空间中心,从而形成一个完整的专家规则库。然后,对于每个输入的DV,通过模糊推理,可以快速在线获得相应的最佳调节变量(MV),这些变量是燃烧系统可以调节的输入变量。然后确定锅炉燃烧调节的模糊优化控制。仿真表明,模糊优化控制方法和非线性优化方法均可达到一致的控制效果。但是,模糊优化控制方法具有较好的实时性。

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