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Adaptive robust energy and reserve co-optimization of integrated electricity and heating system considering wind uncertainty

机译:考虑风不确定性的自适应综合鲁棒能源和电力和供热系统的储备联合优化

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摘要

The uncertainty and variability of wind power pose significant challenges to secure and reliable operation of power systems. Coordinated operation of the electric power system and district heating system, which can provide sufficient reserve capacity and flexibility, is an effective way to cope with the uncertainty. This paper proposes an adaptive robust energy and reserve co-optimization for the integrated electricity and heat system to minimize the total system cost under the worst-case realization of wind uncertainty considering spatial correlations of wind uncertainties. The available reserve capacity and flexibility provided by the district heating system is fully used by exploiting the regulation capabilities of combined heat and power units and electrical boilers, as well as utilizing the building thermal inertia. To reduce the conservatism of the robust solution, the spatial correlation of wind uncertainties is considered in the uncertainty set. The column-and-constraint generation algorithm is adopted to solve the adaptive robust model iteratively by reformulating the second stage with its Karush-Kuhn-Tucker conditions. Simulation results demonstrate that the economic efficiency is improved by utilizing the reserve flexibility from the district heating system and considering wind farm spatial correlations. Compared with the conventional single-stage optimized model, the feasibility of the two-stage robust solution is always guaranteed by considering the real-time operation constraints of the electric power system and district heating system.
机译:风能的不确定性和可变性对电力系统的安全可靠运行提出了严峻的挑战。电力系统和区域供热系统的协调运行可以提供足够的备用容量和灵活性,是应对不确定性的有效方法。针对风电不确定性的最坏情况,在考虑风电不确定性的空间相关性的情况下,本文提出了一种针对电力和热力集成系统的自适应鲁棒能量和储备联合优化算法,以使总系统成本降至最低。通过利用热电联产和电锅炉的调节能力,以及利用建筑物的热惯性,充分利用了区域供热系统提供的可用储备容量和灵活性。为了减少稳健解的保守性,在不确定性集中考虑了风不确定性的空间相关性。采用列和约束生成算法,通过用其Karush-Kuhn-Tucker条件重新构造第二阶段,来迭代地求解自适应鲁棒模型。仿真结果表明,通过利用区域供热系统的储备灵活性并考虑风电场的空间相关性,可以提高经济效率。与传统的单阶段优化模型相比,通过考虑电力系统和区域供热系统的实时运行约束,始终可以确保两阶段鲁棒解决方案的可行性。

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