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A new method for composite system annualized reliability indices based on genetic algorithms

机译:基于遗传算法的复合系统复合系统可靠性指标的一种新方法

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This paper presents a genetic algorithms (GA) based method for state sampling of composite power system. Sampled states are used to assess annualized reliability indices. In the proposed method GA intelligently searches the enormous state space of a power system to find the most probable states contributing to system failure. Binary encoded GA is used to represent system states. Through its fitness function GA is able to trace failure states in a more intelligent manner than conventional methods. A linearized optimization load flow model is used for evaluation of sampled states. The model takes into consideration importance of load in calculating load curtailment at different buses in order to obtain a unique solution for each state. The full set of composite system adequacy indices and load bus indices is calculated. The proposed method is applied to a sample test system to be validated. Obtained results are compared with other conventional methods.
机译:本文提出了一种基于遗传算法(GA)复合电力系统的状态采样方法。采样状态用于评估年度可靠性指数。在所提出的方法GA中,GA智能地搜索电力系统的巨大状态空间,以找到有助于系统故障的最可能的状态。二进制编码的GA用于表示系统状态。通过其健身功能GA能够以比传统方法更智能地跟踪失败状态。线性化优化负载流模型用于评估采样状态。该模型考虑了在不同总线计算负载缩减时负载的重要性,以便为每个状态获得唯一的解决方案。计算完整的复合系统充足性指数和负载总线索引。该方法应用于要验证的样本测试系统。将得到的结果与其他常规方法进行比较。

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