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Optimal Real-Time Scheduling of Wind Integrated Power System Presented with Storage and Wind Forecast Uncertainties

机译:带有存储和风能预测不确定性的风电综合系统的最优实时调度

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The volatility of wind power poses great challenges to the operation of power systems. This paper deals with the economic dispatch problems presented by energy storage in wind integrated systems. A policy iteration algorithm for deriving the cost optimal policy of real-time scheduling is proposed, taking the effect of wind forecast uncertainties into account. First, energy loss and use of fast-ramping generation are selected as the performance metrics. Then, a policy iteration algorithm is developed using the Perturbed Markov decision process. This algorithm has a two-level optimization structure in which both the long-term and short-term behaviors of real-time scheduling policy are optimized. In addition, a unified optimal storage control strategy is presented. The feasibility of the proposed methodology is demonstrated via the wind power archive of Electric Reliability Council of Texas (ERCOT). Through comparative numerical experiments, both the performance of the policy iteration algorithm in the short-term and long-term are verified and the consistency, robustness, good convergence and high computational efficiency of the proposed algorithm are also corroborated.
机译:风能的波动性对电力系统的运行提出了巨大的挑战。本文讨论了风能集成系统中储能带来的经济调度问题。提出了一种考虑风预测不确定性影响的实时调度成本最优策略的策略迭代算法。首先,选择能量损失和使用快速斜坡发电作为性能指标。然后,使用扰动马尔可夫决策过程开发了一种策略迭代算法。该算法具有两级优化结构,其中实时调度策略的长期和短期行为均得到优化。另外,提出了统一的最优存储控制策略。德克萨斯州电力可靠性委员会(ERCOT)的风力发电档案证明了该方法的可行性。通过比较数值实验,验证了策略迭代算法在短期和长期的性能,并验证了该算法的一致性,鲁棒性,良好的收敛性和较高的计算效率。

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