Transmission line planning using global best artificial bee colony method

J. Desai
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Abstract

Introduction. Network expansion, substation planning, generating expansion planning, and load forecasting are all aspects of modern power system planning. The aim of this work is to solve network planning considering both future demand and all equality and inequality constraints. The transmission network design problem for the 6-bus system is considered and addressed using the Global Best Artificial Bee Colony (GABC) method in this research. The program is written in the Matrix Laboratory in MATLAB environment using the proposed methodology. Novelty of the work consist in considering the behavior of bees to find food source in most optimized way in nature with feature of user based accuracy selection and speed of execution selection on any scale of the system to solve Transmission Lines Expansion Problem (TLEP). The proposed method is implemented on nonlinear mathematical function and TLEP function. When demand grows, the program output optimally distributes new links between new generation buses and old buses, determines the overall minimum cost of those links, and determines if those linkages should meet power system limits. Originality of the proposed method is that it eliminated the need of load shedding while planning the future demand with GABC method. Results are validated using load flow analysis in electrical transient analyzer program, demonstrating that artificial intelligence approaches are accurate and particularly effective in non-linear transmission network planning challenges. Practical value of the program is that it can use to execute cost oriented complex transmission planning decision.
基于全局最佳人工蜂群法的输电线路规划
介绍。电网扩容、变电站规划、发电扩容规划和负荷预测是现代电力系统规划的重要内容。本工作的目的是解决考虑未来需求和所有相等和不相等约束的网络规划问题。本文采用全局最优人工蜂群(GABC)方法研究并解决了六总线系统的传输网络设计问题。该程序是在MATLAB环境下的矩阵实验室中使用所提出的方法编写的。本文的新颖之处在于考虑蜜蜂在自然界中以最优化的方式寻找食物来源的行为,并在系统的任何尺度上具有基于用户的精度选择和执行速度选择的特点,以解决输电线路扩展问题(TLEP)。该方法在非线性数学函数和TLEP函数上实现。当需求增长时,程序输出在新一代总线和旧总线之间最优地分配新链路,确定这些链路的总体最小成本,并确定这些链路是否应满足电力系统的限制。该方法的创新之处在于在用GABC方法规划未来需求的同时,省去了减载的需要。利用电瞬变分析程序中的潮流分析验证了结果,表明人工智能方法在非线性输电网规划挑战中是准确且特别有效的。该方案的实用价值在于可用于执行以成本为导向的复杂输电规划决策。
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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