Application of evolutionary multiobjective algorithms for solving the problem of energy dispatch in hydroelectric power plants

Carolina G. Marcelino, Leonel M. Carvalho, Paulo E.M. Almeida, Elizabeth F. Wanner, Vladimiro Miranda

Resultado de pesquisarevisão de pares

6 Citações (Scopus)

Resumo

The Brazilian population increase and the purchase power growth have resulted in a widespread use of electric home appliances. Consequently, the demand for electricity has been growing steadily in an average of 5% a year. In this country, electric demand is supplied predominantly by hydro power. Many of the power plants installed do not operate efficiently from water consumption point of view. Energy Dispatch is defined as the allocation of operational values to each turbine inside a power plant to meet some criteria defined by the power plant owner. In this context, an optimal scheduling criterion could be the provision of the greatest amount of electricity with the lowest possible water consumption, i.e. maximization of water use efficiency. Some power plant operators rely on “Normal Mode of Operation” (NMO) as Energy Dispatch criterion. This criterion consists in equally dividing power demand between available turbines regardless whether the allocation represents an efficient good operation point for each turbine. This work proposes a multiobjective approach to solve electric dispatch problem in which the objective functions considered are maximization of hydroelectric productivity function and minimization of the distance between NMO and “Optimized Control Mode” (OCM). Two well-known Multiobjective Evolutionary Algorithms are used to solve this problem. Practical results have shown water savings in the order of million m3/s. In addition, statistical inference has revealed that SPEA2 algorithm is more robust than NSGA-II algorithm to solve this problem.

Idioma originalInglês
Título da publicação do anfitriãoEvolutionary Multi-Criterion Optimization - 8th International Conference, EMO 2015, Proceedings
EditoresAntónio Gaspar-Cunha, Carlos Henggeler Antunes, Carlos A. Coello Coello
EditoraSpringer Verlag
Páginas403-417
Número de páginas15
ISBN (eletrónico)9783319158914
DOIs
Estado da publicaçãoPublicadas - 2015
Publicado externamenteSim
Evento8th International Conference on Evolutionary Multi-Criterion Optimization, EMO 2015 - Guimarães
Duração: 29 mar. 20151 abr. 2015

Série de publicação

NomeLecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
Volume9019
ISSN (impresso)0302-9743
ISSN (eletrónico)1611-3349

Conferência

Conferência8th International Conference on Evolutionary Multi-Criterion Optimization, EMO 2015
País/TerritórioPortugal
CidadeGuimarães
Período29/03/151/04/15

Nota bibliográfica

Publisher Copyright:
© Springer International Publishing Switzerland 2015.

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