Comparison of conventional and meta-heuristic methods for security-constrained OPF analysis

J. Gunda, S. Djokic, R. Langella, A. Testa
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引用次数: 6

Abstract

Development and implementation of accurate, robust and computationally efficient analytical and modelling tolls is very important for the anticipated transformation of existing networks into the future "smart grids". These tools for network analysis are used at both planning and operating stages, in order to ensure optimal design and configuration of power supply systems, in terms of the requirements for higher flexibility, increased security and improved overall techno-economic performance of modelled networks. In this context, particularly important are "smart grid" applications requiring (close to) real-time controls of large and interconnected power supply systems under serious contingency scenarios and other "highly stressed" network operating conditions. This paper provides a detailed discussion and analysis of both conventional and meta-heuristic methods for security-constrained optimal power flow (SCOPF) studies. The comparison of performance of two conventional SCOPF methods and three meta-heuristic SCOPF algorithms is illustrated on IEEE 14-bus and IEEE 30-bus test networks. The analysis and optimization of objective functions in considered SCOPF methods include minimization of constraint violations in post-contingency states, as well as minimization of fuel costs, active power losses, and CO2 emissions.
安全约束下OPF分析的传统方法与元启发式方法的比较
开发和实施准确、稳健和计算效率高的分析和建模收费对于现有网络向未来“智能电网”的预期转变非常重要。这些网络分析工具用于规划和运行阶段,以确保电力供应系统的优化设计和配置,以满足更高的灵活性、更高的安全性和改进的整体技术经济性能的要求。在这种情况下,特别重要的是“智能电网”应用,需要在严重的应急情况和其他“高度紧张”的网络运行条件下(接近)实时控制大型互联供电系统。本文对安全约束最优潮流(SCOPF)研究的传统方法和元启发式方法进行了详细的讨论和分析。在IEEE 14总线和IEEE 30总线测试网络上,比较了两种传统SCOPF方法和三种元启发式SCOPF算法的性能。在考虑的SCOPF方法中,目标函数的分析和优化包括事故后状态下约束违规的最小化,以及燃料成本、有功功率损耗和二氧化碳排放的最小化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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