Chu and Beasley Genetic Algorithm to Solve the Transmission Network Expansion Planning Problem Considering Active Power Losses

Authors

Keywords:

Transmission network expansion planning, DC model, power losses, Chu and Beasley genetic algorithm

Abstract

Due to the accelerated growth of electricity demand, the scarcity of primary resources to produce electricity, and technological advances in recent years, electricity companies must face and solve these challenges in the best possible way, and for that, the Transmission Network Expansion Planning (TNEP) plays a crucial role, since the decisions taken in longterm planning determine the optimal form of expansion of the networks, to respond to these needs of electricity demands. On the other hand, there is also the tendency to leave the TNEP problem more efficient, robust, and closer to what happens in real electrical networks. For these reasons, this article proposes a methodology to solve the TNEP problem considering active power losses. The problem is formulated as a mixed-integer nonlinear programming (MINLP) problem. The Chu-Beasley Genetic Algorithm (CBGA) is used to transform the MINLP problem into a linear programming (LP) problem. Furthermore, the Villasana Garver constructive heuristic (VGCH) algorithm is used to make the investment proposals made by the AGCB feasible. To measure the efficiency and effectiveness of the proposed methodology several tests are performed on the 6- bus Garver system, the IEEE 24-bus test system, and the South Brazilian 46-bus test system

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Author Biographies

Dany Huamannahui Huanca, State University of Londrina- Brazil

Dany H. Huanca possui graduac¸ao em Ingenieria Mecanica El ectrica - Universidad Nacional del Altiplano - Puno (2016). Atualmente e discente epesquisador de mestrado no departamento de Engenharia Eletrica da Universidade Estadual de Londrina - Parana - Brasil. Tem experiencia nas  areas ´ de gerac¸ao, planejamento de sistemas de trans missao, atuando principalmente nos seguintes temas: otimizac¸ao de sistemas eletricos, compensac¸  ao capacitiva serie CCS em linhas de transmissao, fluxo  de potencia, fluxo de potencia  otimo, metodos  classicos, algoritmos heurısticos e metaheurısticos.

Luis A. Gallego, State University of Londrina- Brazil

Luis A. Gallego P possui graduac¸ao em engenharia Eletrica (2001) e mestrado em Engenharia Eletrica (2003) pela Universidad Tecnologica de Pereira - Colombia, doutorado em Engenharia Eletrica pela UNESP-FEIS (2009). Atualmente, e professor no departamento de Engenharia Eletrica da Universidade Estadual de Londrina - Parana - Brasil. Tem experiencia nas ˆ areas de geracao, transmiss ˜ ao e distribuic¸ao de energia el ˜ etrica, atuando principalmente nos seguintes temas: otimizac¸ao de sistemas eletricos, fluxo de pot ´ encia, fluxo de pot ˆ encia probabil´ıstico, fluxo de potencia ˆ otimo, m ´ etodo de pontos interiores, redes neurais, protec¸oes de sistemas eletricos, algoritmos metaheurısticos.

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Published

2021-04-26

How to Cite

Huamannahui Huanca, D., & Gallego Pareja, L. A. . (2021). Chu and Beasley Genetic Algorithm to Solve the Transmission Network Expansion Planning Problem Considering Active Power Losses. IEEE Latin America Transactions, 19(11), 1967–1975. Retrieved from https://latamt.ieeer9.org/index.php/transactions/article/view/4864