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Short-term multi-objective optimization scheduling for cascaded hydroelectric plants with dynamic generation flow limit based on EMA and DEA

机译:基于EMA和DEA的动态发电限流梯级水电站短期多目标优化调度。

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摘要

A dynamic generation flow strategy using for dynamically coordinating water head of reservoir and water consumption volume for electric energy production is presented in this paper. A novel multi-objective scheduling model is proposed to achieve the optimal trade-off between water volume for generation and electric quantity. To realize the optimal power output the coordination condition is used to describe the relationship between the current water head level and generation flow rate. The constraints are presented in an efficient method based on characters of the cascaded hydroelectric plants. A hybrid global optimization method, which can overcome the shortcoming of weighted method, is proposed for solving the multi-objective problem efficiently. This is done by embedding the data envelopment analysis (OEA) into an electromagnetism-like algorithm (EMA). A test system with eight hydroelectric plants was used to verify this new method. Results show that this novel scheduling method can enhance the synthesis generation benefit of the cascaded hydroelectric plants and realize the optimal solution for the scheduling model.
机译:提出了一种动态协调水库水位和用水量用于发电的动态发电潮流策略。提出了一种新颖的多目标调度模型,以实现发电用水量与电量之间的最佳权衡。为了实现最佳功率输出,使用协调条件来描述当前水头水位与发电流量之间的关系。根据级联水力发电厂的特点,以一种有效的方法提出了约束条件。为了有效解决多目标问题,提出了一种混合全局优化方法,可以克服加权方法的缺点。这是通过将数据包络分析(OEA)嵌入到类似电磁的算法(EMA)中来完成的。使用具有八个水力发电厂的测试系统来验证此新方法。结果表明,这种新型调度方法可以提高梯级水电厂的综合发电效益,实现调度模型的最优解。

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