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锂电混合储能视角下火电机组储能调频系统优化分析

Optimization Analysis of Frequency Regulation Systems for Thermal Power Units from the Perspective of Lithium-Ion Battery Hybrid Energy Storage

  • 摘要: 针对火电机组参与AGC调频过程中响应滞后、调节速率受限及低幅指令跟踪精度不足等问题,提出一种锂电池—超级电容混合储能参与的火储联合调频优化方案,首先建立火电机组、锂电池、超级电容及双向变流器数学模型,构建“模型预测指令分配、模糊滑模执行控制、SOC自适应均衡”三层控制架构;其次通过滚动优化实现火电机组与混合储能功率协调分配,并结合模糊滑模控制提高变流器快速跟踪能力,同时利用SOC均衡策略增强系统持续运行能力。仿真结果表明,所提方法可显著缩短调频响应时间,提高调节速率与跟踪精度,并有效降低锂电池循环冲击,兼顾调频性能与储能寿命。

     

    Abstract: rageTo address issues such as response lag, limited regulation rates, and insufficient low-amplitude command tracking accuracy during thermal power units'' participation in AGC frequency regulation, this study proposes an optimized integrated thermal-storage frequency regulation scheme utilizing lithium-ion batteries and supercapacitors. First, mathematical models are established for thermal power units, lithium-ion batteries, supercapacitors, and bidirectional converters, forming a three-tier control architecture comprising model-based command prediction, fuzzy sliding-mode execution control, and SOC adaptive balancing. Subsequently, rolling optimization achieves coordinated power allocation between thermal units and hybrid energy storage, while fuzzy sliding-mode control enhances converter tracking efficiency and the SOC balancing strategy improves system stability. Simulation results demonstrate that the proposed method significantly reduces frequency regulation response time, improves regulation rate and tracking accuracy, effectively mitigates lithium-ion battery cycle stress, and balances frequency regulation performance with energy storage lifespan.

     

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