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首页> 外文期刊>Turkish Journal of Electrical Engineering and Computer Sciences >Stochastic congestion management considering power system uncertainties: a chance-constrained programming approach
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Stochastic congestion management considering power system uncertainties: a chance-constrained programming approach

机译:考虑电力系统不确定性的随机拥塞管理:一种机会受限的编程方法

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Considering system uncertainties in developing power systems, algorithms such as congestion management (CM) are vital in power system analysis and studies. This paper proposes a new model for power system CM by considering power system uncertainties based on chance-constrained programming (CCP). In the proposed approach, transmission constraints are taken into account by stochastic, instead of deterministic, models. The proposed approach considers network uncertainties with a specific level of probability in the optimization process, and then an analytical approach is used to solve the new model of stochastic congestion management. In this approach, the stochastic optimization problem is transformed into an equivalent deterministic problem. Moreover, an efficient numerical approach based on a real-coded genetic algorithm and Monte Carlo technique is proposed to solve the CCP-based congestion management problem in order to make a comparison to the analytical approach. The effectiveness of the proposed approach is evaluated by applying the method to the IEEE 30-bus test system. The results show that the proposed CCP model and the analytical solving approach outperform the existing models.
机译:考虑到开发电力系统中的系统不确定性,诸如拥塞管理(CM)之类的算法在电力系统分析和研究中至关重要。本文通过基于机会约束规划(CCP)的电力系统不确定性,提出了电力系统CM的新模型。在提出的方法中,传输约束是通过随机模型而不是确定性模型来考虑的。所提出的方法在优化过程中考虑了具有特定概率水平的网络不确定性,然后使用一种分析方法来求解新的随机拥塞管理模型。在这种方法中,随机优化问题转化为等效的确定性问题。此外,为解决基于CCP的拥塞管理问题,提出了一种基于实数编码遗传算法和Monte Carlo技术的有效数值方法,以与分析方法进行比较。通过将该方法应用于IEEE 30总线测试系统,可以评估该方法的有效性。结果表明,所提出的CCP模型和解析求解方法优于现有模型。

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