中国电力 ›› 2026, Vol. 59 ›› Issue (3): 94-102.DOI: 10.11930/j.issn.1004-9649.202506047
郑峰1(
), 孙电2(
), 黄丽丽2(
), 杨峰2, 倪芸2
收稿日期:2025-06-17
修回日期:2026-01-05
发布日期:2026-03-16
出版日期:2026-03-28
作者简介:基金资助:
ZHENG Feng1(
), SUN Dian2(
), HUANG Lili2(
), YANG Feng2, NI Yun2
Received:2025-06-17
Revised:2026-01-05
Online:2026-03-16
Published:2026-03-28
Supported by:摘要:
随着地区分布式能源快速发展,其单机装机容量小和出力随机性强的问题愈发凸显,导致分布式能源在单独参与市场交易时竞争力不足。为提升其市场参与能力,整合分布式能源形成虚拟电厂(virtual power plant,VPP)已成为一种有效途径。因此,针对含分布式能源的VPP市场交易策略进行研究,提出一种基于混合博弈强化学习的交易策略。首先,根据虚拟电厂内部单元的运行特性构建能源供应商和负荷聚合商的收益模型;然后,为了保证虚拟电厂内部运营商的整体收益建立社会福利最大化模型;最后,基于Stackelberg博弈和演化博弈的混合博弈强化学习算法求解该交易模型。算例分析表明,基于混合博弈强化学习算法的双层模型求解效果优于其他传统智能算法,求解时间减小近50%;此外,VPP同时参与能量市场和辅助服务市场时,可获得更高的收益。
郑峰, 孙电, 黄丽丽, 杨峰, 倪芸. 基于混合博弈强化学习的虚拟电厂市场交易策略[J]. 中国电力, 2026, 59(3): 94-102.
ZHENG Feng, SUN Dian, HUANG Lili, YANG Feng, NI Yun. Virtual power plant market trading strategy based on hybrid game reinforcement learning[J]. Electric Power, 2026, 59(3): 94-102.
| 最大充放电 功率/MW | 容量/ (MW·h) | 充放电 效率 | 初始荷 电状态 | 最小荷 电状态 | 最大荷 电状态 |
| 20 | 80 | 0.95 | 0.5 | 0.4 | 0.9 |
表 1 储能装置参数
Table 1 Parameters of energy storage devices
| 最大充放电 功率/MW | 容量/ (MW·h) | 充放电 效率 | 初始荷 电状态 | 最小荷 电状态 | 最大荷 电状态 |
| 20 | 80 | 0.95 | 0.5 | 0.4 | 0.9 |
| 算法 | 社会效益/104元 | 求解时间/s |
| 粒子群算法 | 4.81 | 25.42 |
| KKT条件 | 4.83 | 12.15 |
| 遗传算法 | 4.83 | 23.57 |
| 混合强化学习算法 | 4.86 | 20.11 |
表 2 不同算法下优化结果对比
Table 2 Comparison of optimization results under different algorithms
| 算法 | 社会效益/104元 | 求解时间/s |
| 粒子群算法 | 4.81 | 25.42 |
| KKT条件 | 4.83 | 12.15 |
| 遗传算法 | 4.83 | 23.57 |
| 混合强化学习算法 | 4.86 | 20.11 |
| 场景 | 能源供应商收益 | 负荷聚合商 收益/104元 | 社会效益/ 104元 | |
| 能量收益/104元 | 辅助服务 收益/104元 | |||
| 场景1 | 32.65 | 0 | –32.88 | –2.30 |
| 场景2 | 32.92 | 4.88 | –32.95 | 4.86 |
表 3 能源供应商参与不同市场的交易结果对比
Table 3 Comparison of transaction results of VPP operators participating in different markets
| 场景 | 能源供应商收益 | 负荷聚合商 收益/104元 | 社会效益/ 104元 | |
| 能量收益/104元 | 辅助服务 收益/104元 | |||
| 场景1 | 32.65 | 0 | –32.88 | –2.30 |
| 场景2 | 32.92 | 4.88 | –32.95 | 4.86 |
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