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330MW机组湿法烟气脱硫控制系统目标值优化 被引量:8

Target optimization of wet flue gas desulfurization control system in 330 MW unit
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摘要 基于火电机组脱硫系统在实际运行过程中积累的历史数据,采用数据挖掘的方法对系统的重要运行参数进行优化,挖掘出在满足脱硫效率要求时经济效益最大的最佳运行参数值。提出了一种模糊关联规则挖掘算法,对某330 MW机组石灰石-石膏湿法烟气脱硫系统运行优化目标值进行确定。针对历史运行数据利用竞争凝聚算法决定分类数、软化划分边界并构造优化的模糊数据集,以满足脱硫效率为前提,以经济效益作为优化目标,利用模糊Apriori关联规则挖掘算法得到的频繁项集进行关联规则挖掘,最终得到运行参数最优目标值,实验结果和理论分析表明挖掘结果能为电厂脱硫系统的经济运行作出贡献,可以作为指导机组优化运行的重要依据。 Based on the history operation data of flue gas desulfurization ( FGD ) system in thermal power plant, using data mining method, several important operation parameters were optimized. The optimal operation parameters values, which can meet the required desulphurization efficiency and the maximum economic efficiency, were confirmed. A fuzzy association rule mining algorithm w^s proposed to determine the optimization target of limestone-gypsum wet FGD in a 330 MW unit. Firstly, the fuzzy data set of history data was structured by the competitive agglomeration algorithm that can determine the cluster number and soften the demarcation of the boundaries. Secondly, for meeting the desulfurization efficiency, treating the economic benefit as optimization objective, using fuzzy Apriori association rules algorithm for data mining, the frequent item set was gained. Finally, the optimal objective value of the operation parameters was obtained. The experimental results and theoretical analysis show that the mining results can contribute to the economic operation of desulfurization system in power plant and can provide the important reference for the optimal operation of unit.
出处 《中国电力》 CSCD 北大核心 2012年第4期68-72,共5页 Electric Power
基金 河北省教育厅科研基金资助项目(Z2011203)
关键词 运行优化目标值 模糊关联规则 竞争凝聚算法 控制系统优化 operation optimization target fuzzy association rules competitive agglomeration algorithm control system optimization
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参考文献3

  • 1廖永进,王力,曾庭华,汤龙华.火电厂烟气脱硫装置最优运行工况的探讨和实践[J].广东电力,2006,19(6):32-35. 被引量:10
  • 2SRIKANT R, AGRAWAL R. Mining quantitative association rules in large relational tables [J ]. Proceedings of the ACM SIGMOD Interna- tional Conference on the Management of Data, 1996, 25 (2) : 1 - 12.
  • 3FRIGUI H, KRISHNAPURAM R. Clustering by competitive agglom- eration [ J ].Pattern Recognition, 1997,30 (7): 1109-1119.

二级参考文献1

  • 1廖永进.火力发电厂烟气脱硫成本研究[R].广州:广东省电力试验研究所,2005.

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