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粒子群优化的模糊控制器设计
引用本文:韩璞,王学厚,李剑波,王东风. 粒子群优化的模糊控制器设计[J]. 动力工程, 2005, 25(5): 663-667
作者姓名:韩璞  王学厚  李剑波  王东风
作者单位:华北电力大学,自动化系,保定,071003
摘    要:为避免模糊控制器设计中参数的复杂调试,并使其获得最佳控制性能,应用新颖的粒子群优化算法对模糊控制器参数进行优化设计。针对常规模糊控制器稳态精度欠佳的弱点,采用模糊控制与PID控制相结合的双模控制以有效消除静态偏差。通过对具有严重参数不确定性、多扰动以及大迟延的电厂主蒸汽温度被控对象的仿真研究,表明粒子群算法寻优速度快,计算量小,对模糊控制器参数的优化设计是非常有效的,使得主汽温控制系统在不同负荷下均获得很好的调节品质。图6表2参8

关 键 词:自动控制技术  粒子群优化算法  模糊控制  PID控制  主汽温控制系统
文章编号:1000-6761(2005)05-0663-05
收稿时间:2005-03-08
修稿时间:2005-03-08

Design of a Fuzzy Controller Based on Particle Swarm Optimization
HAN Pu,WANG Xue-hou,LI Jian-bo,WANG Dong-feng. Design of a Fuzzy Controller Based on Particle Swarm Optimization[J]. Power Engineering, 2005, 25(5): 663-667
Authors:HAN Pu  WANG Xue-hou  LI Jian-bo  WANG Dong-feng
Affiliation:Department of Automation, North China University of Electric Power, Baoding 071003, China
Abstract:For avoiding complex adjustment of parameters as asked for in the design of fuzzy controllers, and attain optimal control properties, particle swarm optimization (PSO) algorithm has been made use of to optimize the parameters of a fuzzy controller during design. Noticing the shortcoming of lack of steady state precision of conventional controllers, dual model control by combined application of fuzzy and PLD control is used to effectively eliminate steady state deviations. Simulation study results on fresh temperature in power plants, which is characterized by parameter uncertainty, liable to disturbances and time-lay, show that PSO algorithm is distinguished by its ability of quick searching and of reducing calculation work required, thus providing a very efficient way of optimizing the parameters of fuzzy controllers, and herewith markedly imroving control quality of the fresh steam temperature control system under all loading conditions. Figs 6, tables 2 and refs 8.
Keywords:automatic control technique  particle swarm optimization algorithm  fuzzy control  PID control  fresh steam temperature control system
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