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Optimizing performance attributes of electric power systems using chaotic salp swarm optimizer

机译:使用Chaotic Salp Swarm Optimizer优化电力系统性能属性

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This paper investigates the performance of a chaotic salp swarm optimization (CSSO) algorithm for solving optimal power flow (OPF) problems. The proposed CSSO-based method is applied on five different types of objective functions (OFs) which include generation costs minimization, environmental pollution/emission reduction, minimizing the transmission active power losses, enhancing the voltage profile, and upgrading system stability. Single and multi-objective frameworks are considered to attain various operational, economic, environmental and technical benefits. Initially, single OFs are used to formulate the optimization problem, and at later stage, simultaneous multiple objectives are optimized subject to a set of equality and inequality constraints. To prove the viability of the proposed CSSO-based OPF, standard IEEE 30-bus and 57-bus test systems via 16 studied cases are investigated. In addition, the subsequent cropped results are compared with other competing recent optimization methods in the literature. It can be reported that the cropped best fuel costs when they are optimized using the CSSO are 798.93 $/h and 41,666.66 $/h for the IEEE 30-bus and 57-bus test cases, respectively. The numerical results and performance tests along with comprehensive comparisons clearly indicate the superiority of the CSSO in achieving the given objectives.
机译:本文研究了混沌SALP群优化(CSSO)算法来解决最佳功率流(OPF)问题的性能。所提出的基于CSSO的方法应用于五种不同类型的物理功能(OFS),包括生成成本最小化,环境污染/减排,最小化传输有源功率损耗,增强电压曲线和升级系统稳定性。单一和多目标框架被认为是达到各种运营,经济,环境和技术效益。最初,单个单曲用于制定优化问题,并且在稍后阶段,同时多个目标被优化,经过一组平等和不等式约束。为了证明所提出的基于CSSO的OPF,标准IEEE 30-BUR和57总线测试系统的可行性进行了研究。此外,随后的裁剪结果与文献中的其他竞争最近的优化方法进行了比较。可以报​​告使用CSSO优化的裁剪最佳燃料成本分别为IEEE 30-Bus和57总线测试用例的798.93 $ / h和41,666.66 $ / h。数值结果和性能测试以及综合比较清楚地表明了CSSO在实现给定目标方面的优势。

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