Centralized self-healing scheme for electrical distribution systems
Patricia L. Cavalcante, Juan Camilo Lopez, John F. Franco, Marcos J. Rider, Ariovaldo V. Garcia, Marcos R. R. Malveira, Luana L. Martins, Luiz Carlos M. Direito
ARTIGO
Inglês
Agradecimentos: This work was supported in part by the Brazilian Institution Coordenação de Aperfeiçoamento de Pessoal de Nível Superior, in part by Conselho Nacional de Desenvolvimento Científico e Tecnológico, and in part by Pesquisa e Desenvolvimento da Agencia Nacional de Energia Elétrica. Paper...
Ver mais
Agradecimentos: This work was supported in part by the Brazilian Institution Coordenação de Aperfeiçoamento de Pessoal de Nível Superior, in part by Conselho Nacional de Desenvolvimento Científico e Tecnológico, and in part by Pesquisa e Desenvolvimento da Agencia Nacional de Energia Elétrica. Paper no. TSG-00794-2014
Ver menos
In this paper, a two-stage procedure is proposed in order to solve the centralized self-healing scheme for electrical distribution systems. The considered self-healing actions are the reconfiguration of the distribution grid and, if needed, node and zone load-shedding. Thus, the proposed procedure...
Ver mais
In this paper, a two-stage procedure is proposed in order to solve the centralized self-healing scheme for electrical distribution systems. The considered self-healing actions are the reconfiguration of the distribution grid and, if needed, node and zone load-shedding. Thus, the proposed procedure determines the status of the switching devices in order to effectively isolate a faulty zone and minimize the number of de-energized nodes and zones, while ensuring that the operative and electrical constraints of the system are not violated. The proposed method is comprised of two stages. The first stage solves a mixed integer linear programming (MILP) problem in order to obtain the binary decision variables for the self-healing scheme (i.e., the switching device status and energized zones). In the second stage, a nonlinear programming (NLP) problem is solved in order to adjust the steady-state operating point of the topology found in the first stage (i.e., correction of the continuous electrical variables and load-shedding optimization). Commercial optimization solvers are used in the first stage to solve the MILP problem and in the second stage to solve the NLP problem. A 44-node test system and a real Brazilian distribution system with 964-nodes were used to test and verify the proposed methodology
Ver menos
CONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICO - CNPQ
COORDENAÇÃO DE APERFEIÇOAMENTO DE PESSOAL DE NÍVEL SUPERIOR - CAPES
Fechado
DOI: https://doi.org/10.1109/TSG.2015.2454436
Texto completo: https://ieeexplore.ieee.org/document/7175042
Centralized self-healing scheme for electrical distribution systems
Patricia L. Cavalcante, Juan Camilo Lopez, John F. Franco, Marcos J. Rider, Ariovaldo V. Garcia, Marcos R. R. Malveira, Luana L. Martins, Luiz Carlos M. Direito
Centralized self-healing scheme for electrical distribution systems
Patricia L. Cavalcante, Juan Camilo Lopez, John F. Franco, Marcos J. Rider, Ariovaldo V. Garcia, Marcos R. R. Malveira, Luana L. Martins, Luiz Carlos M. Direito
Fontes
|
IEEE transactions on smart grid (Fonte avulsa) |