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Stochastic Optimization for Network-Constrained Power System Scheduling Problem

机译:网络约束电力系统调度问题的随机优化

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摘要

The stochastic nature of demand and wind generation has a considerable effect on solving the scheduling problem of a modern power system. Network constraints such as power flow equations and transmission capacities also need to be considered for a comprehensive approach to model renewable energy integration and analyze generation system flexibility. Firstly, this paper accounts for the stochastic inputs in such a way that the uncertainties are modeled as normally distributed forecast errors. The forecast errors are then superimposed on the outputs of load and wind forecasting tools. Secondly, it efficiently models the network constraints and tests an iterative algorithm and a piecewise linear approximation for representing transmission losses in mixed integer linear programming (MILP). It also integrates load shedding according to priority factors set by the system operator. Moreover, the different interactions among stochastic programming, network constraints, and prioritized load shedding are thoroughly investigated in the paper. The stochastic model is tested on a power system adopted from Jeju Island, South Korea. Results demonstrate the impact of wind speed variability and network constraints on the flexibility of the generation system. Further analysis shows the effect of loss modeling approaches on total cost, accuracy, computational time, and memory requirement.
机译:需求和风力的随机性对解决现代电力系统的调度问题具有相当大的影响。还需要考虑诸如潮流方程和传输容量之类的网络约束条件,以建立可再生能源集成建模和分析发电系统灵活性的综合方法。首先,本文以这种方式考虑了随机输入,即将不确定性建模为正态分布的预测误差。然后将预测误差叠加到负荷和风能预测工具的输出上。其次,它有效地建模了网络约束,并测试了表示混合整数线性规划(MILP)中传输损耗的迭代算法和分段线性逼近。它还根据系统操作员设置的优先级因素整合了减载。此外,本文还深入研究了随机编程,网络约束和优先减载之间的不同相互作用。随机模型在韩国济州岛采用的电源系统上进行了测试。结果表明风速可变性和网络约束对发电系统灵活性的影响。进一步的分析显示了损失建模方法对总成本,准确性,计算时间和内存需求的影响。

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  • 来源
    《Mathematical Problems in Engineering》 |2015年第20期|694619.1-694619.17|共17页
  • 作者单位

    Natl Taiwan Univ Sci & Technol, Dept Elect Engn, Taipei 106, Taiwan;

    Genius Engn, Luanda, Angola;

    Natl Taiwan Univ Sci & Technol, Dept Elect Engn, Taipei 106, Taiwan;

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