考虑储能支撑的微电网电力电量主动平衡控制方法

Active Power Balance Control Method for Microgrids Considering Energy Storage Support

  • 摘要: 随着“双碳”目标推进,分布式光伏规模化接入加剧了微电网的电力供需波动和电源出力不确定性,电池储能系统对其稳定运行的支撑作用也日益凸显。为此,该文提出考虑储能支撑的微电网电力电量主动平衡控制方法。首先,针对电池单元的运行特性,建立考虑电热–老化的电池储能模型。其次,以微电网系统运行成本和电池储能系统老化成本最小为目标,考虑电池储能系统(battery energy storage system, BESS)运行约束、微电网系统运行约束和分布式光伏运行约束,建立微电网电力电量平衡优化模型。然后,针对模型非凸性,通过松弛变换与线性分段策略,将问题转化为易于求解的二阶锥规划问题。最后,依托湖北恩施地区实际算例,开展 8 760 h全时段仿真验证。结果表明,所提方法能有效平抑功率波动、保障微电网稳定,为高比例新能源接入下的微电网调控提供技术支撑。

     

    Abstract: In the context of the dual-carbon goal, the large-scale integration of distributed photovoltaics poses challenges to microgrids, including power supply and demand fluctuations and uncertain power output. The battery energy storage system (BESS) plays an increasingly critical role in supporting the stable operation of the microgrid. Therefore, an active power balance control method for microgrids considering energy storage support is proposed. Firstly, based on the operational characteristics of the battery unit, a battery energy storage model that incorporates electro-thermal aging is established. Secondly, to minimize both the operational cost of the microgrid system and the aging cost of the battery energy storage system, an optimization model for power and energy balance in the microgrid is established, subject to constraints on BESS operation, microgrid system operation, and distributed photovoltaic operation. Then, to address the model’s non-convexity, the problem is reformulated as a second-order cone programming problem. It can be easily solved by relaxation transformation and linear segmentation strategy. Finally, a full time, 8760-hour simulation verification is conducted based on an actual case of the Enshi area in Hubei Province. The results verify that the proposed method can effectively suppress power fluctuations and ensure microgrid stability, thereby providing technical support for microgrid regulation under high-penetration renewable energy integration.

     

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