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多目标进化算法在电站锅炉燃烧优化控制系统设计中的应用
引用本文:饶苏波.多目标进化算法在电站锅炉燃烧优化控制系统设计中的应用[J].广东电力,2006,19(4):11-15.
作者姓名:饶苏波
作者单位:广东省粤电集团有限公司,广州,510630
摘    要:构造了一种基于最小二乘支持向量机和多目标进化算法的锅炉燃烧优化控制系统,通过从电厂分散控制系统(DCS)上采集数据,利用最小二乘曼持向量机对锅炉燃烧特性建模,并通过样本的机器学习,提出了以锅炉效率与NOx排放量为组合的锅炉燃烧多目标优化模型行工况寻优,根据模糊集理论在Pareto解集中求得满意解采用基于Pareto最优概念的多目标进化算法实现运获得锅炉燃烧优化调整方式。

关 键 词:燃烧优化  NOx排放  支持向量机  多目标算法
文章编号:1007-290X(2006)04-0041-05
收稿时间:2006-02-27
修稿时间:2006-02-27

Multiobjective evolutionary algorithm applied in design of combustion optimization control system of utility boilers
RAO Su-bo.Multiobjective evolutionary algorithm applied in design of combustion optimization control system of utility boilers[J].Guangdong Electric Power,2006,19(4):11-15.
Authors:RAO Su-bo
Affiliation:Guangdong Yudean Group Co., Ltd., Guangzhou 510630, China
Abstract:Power plant operation is confronted with two requirements to reduce its operation cost and to lower its emission.This paperpresents a research on optimized system design for high-efficiency and low-emission combustion of utility boilers.Multiobjectiveevolutionary algorithm(MOEA) is employed to solve these multiple and conflicting objectives and perform a search to determine theoptimum solution of the least square support vector machine(LS-SVM) model,which is used to set up a boiler combustion responseproperty model for NOxemission and efficiency,so as to obtain currently optimum combustion adjustment mode of boiler.Simulationand theoretical analysis show that the proposed optimal method may meet the two requirements to reduce operation cost and to loweremission.
Keywords:combustion optimization  NOxemission  support vector machine  multiobjective evolutionary algorithm(MOEA)
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