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Scenario generation for electric vehicles' uncertain behavior in a smart city environment

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Resumo(s)

This paper presents a framework and methods to estimate electric vehicles' possible states, regarding their demand, location and grid connection periods. The proposed methods use the Monte Carlo simulation to estimate the probability of occurrence for each state and a fuzzy logic probabilistic approach to characterize the uncertainty of electric vehicles' demand. Day-ahead and hour-ahead methodologies are proposed to support the smart grids' operational decisions. A numerical example is presented using an electric vehicles fleet in a smart city environment to obtain each electric vehicle possible states regarding their grid location.

Descrição

Palavras-chave

Big data Electric vehicles Fuzzy logic Monte Carlo simulation Smart city

Contexto Educativo

Citação

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Unidades organizacionais

Fascículo

Editora

Elsevier

Licença CC

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