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        A New Approach for the Monte-Carlo Method to Locate and Size DGs in Distribution Systems

        Fecha
        2018
        Registro en:
        2018 IEEE 9th Power, Instrumentation and Measurement Meeting, EPIM 2018
        9781538678428
        https://hdl.handle.net/20.500.12585/8859
        10.1109/EPIM.2018.8756405
        Universidad Tecnológica de Bolívar
        Repositorio UTB
        55791991200
        56919564100
        57205565936
        22836502400
        http://repositorioslatinoamericanos.uchile.cl/handle/2250/3722615
        Autor
        Grisales-Noreña L.F.
        Montoya O.D.
        González-Montoya D.
        Ramos-Paja C.A.
        Institución
        • Universidad Tecnológica de Bolivar UTB (Colombia)
        Resumen
        This paper proposes a new approach for a Parallel implementation of Monte-Carlo method aimed for optimal location and sizing of distributed generators in distribution networks. In this approach, a reduction of the solution space is performed, using heuristic strategies, to improve processing times, power losses and voltage profiles considering the location of distributed generators in electric distribution networks. The mathematical formulation of the problem considers a single-objective function, which is composed by weighting factors associated with active power losses and square voltage error minimization; moreover, classical power flow constraints and distributed generation capabilities are considered as restrictions. A master-slave optimization strategy is used to solve the problem: the master stage corresponds to the proposed parallel Monte-Carlo with space solution reduction, which performs the optimal location of the distributed generators; the slave strategy is in charge of solving the resulting optimal power problem. Classical 33-node and 69node test systems are used to validate the proposed approach via MATLAB/MATPOWER software. For comparison purposes, the loss sensitivity factor (LSF), genetic algorithm (GA) and classical parallel Monte-Carlo (PMC) solutions are also tested. The simulations confirm that the proposed reduction to the space solution for the PMC provides improved results in comparison with the existing approaches. © 2018 IEEE.
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        Red de Repositorios Latinoamericanos
        + de 8.000.000 publicaciones disponibles
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        Colecciones destacadas
        • Tesis latinoamericanas
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        Dirección de Servicios de Información y Bibliotecas (SISIB)
        Universidad de Chile
        Red de Repositorios Latinoamericanos | 2006-2018