Environmental Transmission Expansion Planning using non-linear programming and evolutionary techniques

C. Correa, R. Bolanos, Alejandro Garces
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引用次数: 14

Abstract

Current energy consumption has led to an increase in the use of fossil fuels to generate electricity, which in turn produces negative impacts on the environment. Studies show that demand will continue growing and new schemes for generating power and managing resources should be developed. In the case of the transmission network, some constraints may lead to use plants with high emission levels, and therefore, appropriate planning is key to minimize environmental impact. This work proposes a methodology for solving the Transmission Expansion Planning Problem (TEPP) when emissions of CO2 are considered. The result is an investment plan that leads to the lowest level of emissions by means of a Chu-Beasley Genetic Algorithm (CBGA). An improvement step is carried in the CBGA in order to minimize also the cost of the plan. Non-linear Interior Point Method (NLIPM) is used to generate the initial population and Linear (LIPM) is used to solve the operative problem in the evolutionary process. The approach is validated using the IEEE-24 bus system in order to show its effectiveness.
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使用非线性规划和进化技术的环境传输扩展规划
目前的能源消耗导致化石燃料发电的使用增加,这反过来又对环境产生负面影响。研究表明,需求将继续增长,应该制定新的发电和资源管理方案。在输电网的情况下,一些限制可能导致使用高排放水平的工厂,因此,适当的规划是最大限度地减少环境影响的关键。本文提出了一种考虑二氧化碳排放时解决输电扩展规划问题(TEPP)的方法。利用丘-比斯利遗传算法(chui - beasley Genetic Algorithm, CBGA),得出了实现最低排放水平的投资方案。在CBGA中进行了改进步骤,以最小化计划的成本。采用非线性内点法(NLIPM)生成初始种群,采用线性法(LIPM)求解演化过程中的操作问题。利用IEEE-24总线系统验证了该方法的有效性。
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