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Cooperative optimization scheduling of the electricity-gas coupled system considering wind power uncertainty via a decomposition-coordination framework

机译:通过分解协调框架考虑风电不确定性的燃气-燃气耦合系统协同优化调度

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摘要

The extensive installation of gas-fired units and the integration of large-scale wind power connected to power grid have strengthened the interdependency between power system and natural gas network. Consequently, wind power uncertainty accompanying with the coupling interaction by gas-fired units has brought new challenges to the safe and economic operation of electricity-gas coupled system. A decomposition-coordination framework is developed to study the cooperative optimization operation of the integrated electricity-gas coupled system. In this framework, a data-driven distributionally robust optimization (DDRO) model is proposed to solve the power system scheduling problem with wind power uncertainty. Aiming to minimize the expectation of the operation cost under the worst-case distribution, DDRO combines the advantages of the traditional robust optimization (RO) and stochastic optimization. Case studies are implemented on two electricity-gas coupled systems of different scales to verify the effectiveness of the proposed decomposition-coordination framework with DDRO. Specifically, compared with the distributionally robust optimization (DRO) model based on moment information, the solution obtained by DDRO can save 1765.01 $ for the 6-bus power system and 2331.18 $ for the IEEE 24-bus power system, respectively. It is demonstrated that DDRO can achieve less conservative and more economic scheduling solutions compared to DRO.
机译:燃气装置的广泛安装以及与电网连接的大规模风电的整合,加强了电力系统与天然气网络之间的相互依赖性。因此,燃气机组耦合耦合带来的风能不确定性给电-气耦合系统的安全经济运行带来了新的挑战。建立了分解协调框架,以研究集成的燃气-天然气耦合系统的协同优化操作。在此框架下,提出了一种数据驱动的分布式鲁棒优化(DDRO)模型,以解决具有风电不确定性的电力系统调度问题。 DDRO旨在最大程度降低最坏情况下的运营成本预期,结合了传统鲁棒优化(RO)和随机优化的优势。在两个不同规模的电-气耦合系统上进行了案例研究,以验证采用DDRO的拟议分解协调框架的有效性。具体而言,与基于力矩信息的分布式鲁棒优化(DRO)模型相比,DDRO获得的解决方案对于6总线电源系统可以节省1765.01美元,对于IEEE 24总线电源系统可以节省2331.18美元。事实证明,与DRO相比,DDRO可以实现更少的保守性和更经济的调度解决方案。

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