Suzhou Electric Appliance Research Institute
期刊号: CN32-1800/TM| ISSN2097-6623

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含光伏电源的微电网光储荷抗功率扰动控制

来源:电工电气发布时间:2026-02-26 15:26 浏览次数:5

含光伏电源的微电网光储荷抗功率扰动控制

刘海霞
(科大国创新能科技有限公司,安徽 合肥 230000)
 
    摘 要:微电网存在多个光伏电源的情况下,其光伏发电受光照度与温度影响造成的功率扰动,会导致传统集中式单一光储荷控制存在明显不足。提出了含光伏电源的微电网光储荷抗功率扰动控制方法,该方法构建了微电网光伏电源模型,针对光伏电源输出功率的间歇性、随机性和波动性,采用最大功率点跟踪算法中的扰动观察法动态调整其运行点;对于储能装置,依据其荷电状态和微电网功率需求调整充放电功率,实现功率扰动控制。在平稳控制功率的前提下,采用多智能体一致性算法开展协调控制,将光伏电源、储能装置和负荷视为独立智能体,通过迭代更新各智能体状态变量,使其趋于一致,从而得到各部分功率参考值,实现微电网光储荷的抗功率扰动控制。实验结果表明:该方法能有效协调功率分配,光伏电源功率围绕100 kW 上下波动,临近80 min 时达到较高峰值,频率变化率处于较为稳定的状态,验证了其在微电网稳定控制中的优越性。
    关键词: 光伏电源;微电网;储能装置;负荷需求;扰动控制;多智能体一致性算法
    中图分类号:TM615 ;TM761+.2     文献标识码:A     文章编号:2097-6623(2026)02-0018-05
 
Anti-Power Disturbance Control of Photovoltaic–Storage–Load
Microgrid with Photovoltaic Power Sources
 
LIU Hai-xia
(GuoChuang Renewable Energy Technology Co., Ltd., Hefei 230000, China)
 
    Abstract: In the case of multiple photovoltaic power sources in the microgrids, the power disturbance caused by the influence of light intensity and temperature on photovoltaic power generation can lead to significant deficiencies in traditional centralized single photovoltaic-storage-load control. This paper proposes a control method for photovoltaic-storage-load in microgrids with photovoltaic sources to resist power disturbances, which constructs a photovoltaic power source model for microgrids. In response to the intermittency, randomness, and variability of photovoltaic power output, the disturbance observation method in the maximum power point tracking algorithm is employed to dynamically adjust its operating point. For energy storage devices, the charging and discharging power is adjusted based on their state of charge and the power demand of the microgrid, achieving power disturbance control. Under the premise of stable power control, a multi-agent consensus algorithm is used for coordinated control, treating photovoltaic power sources, energy storage devices, and loads as independent agents. By iteratively updating the state variables of each agent to make the converge to a conststant state, thus obtaining power reference values for each component and achieving anti-power disturbance control for photovoltaic power sources, energy storage devices, and loads in microgrids. Experimental results show that this method can effectively coordinate power distribution. The power of the photovoltaic source fluctuates around 100 kW, reaching a higher peak near 80 min, with a relatively stable frequency change rate, verifying its superiority in stable control of microgrids.
    Key words: photovoltaic power source; microgrid; energy storage device; load demand; disturbance control; multi-agent consensus algorithm
 
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