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Probabilistic Congestion Management Considering Power System Uncertainties Using Chance-constrained Programming

机译:考虑机会不确定性的考虑电力系统不确定性的概率拥塞管理

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摘要

In this article, a new model for stochastic congestion management considering system uncertainties has been developed. The model utilizes chance-constrained programming to propose the stochastic formulation for the congestion management problem. In this approach, transmission constraints are considered with stochastic models instead of deterministic models. Indeed, this approach considers network uncertainties with a specific level of probability in the optimization process. Moreover, an efficient numerical approach based on the real-coded genetic algorithm and Monte Carlo technique has been proposed to solve the chance-constrained programming based congestion management scheme. Effectiveness of the proposed algorithm has been evaluated by applying the method to the IEEE 30-bus test system.
机译:在本文中,开发了一种考虑系统不确定性的随机拥塞管理新模型。该模型利用机会约束编程来提出用于拥塞管理问题的随机公式。在这种方法中,使用随机模型而不是确定性模型来考虑传输约束。实际上,这种方法在优化过程中考虑具有特定概率级别的网络不确定性。此外,提出了一种基于实数编码遗传算法和蒙特卡洛技术的有效数值方法,以解决基于机会约束编程的拥塞管理方案。通过将该方法应用于IEEE 30总线测试系统,已评估了该算法的有效性。

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