Electric Power ›› 2025, Vol. 58 ›› Issue (10): 14-26.DOI: 10.11930/j.issn.1004-9649.202503014
• Key Technologies for the Coordinated Planning and Operation of Power Sources, Grids, Loads and Storage in the "15th Five-Year Plan" Period • Previous Articles Next Articles
HE Jintao1,2(
), WANG Can1,2(
), WANG Mingchao1,2(
), CHENG Bentao1,2, LIU Yuzheng1,2, CHANG Wenhan1,2, WANG Rui3, YU Han4
Received:2025-03-07
Online:2025-10-23
Published:2025-10-28
Supported by:CLC Number:
HE Jintao, WANG Can, WANG Mingchao, CHENG Bentao, LIU Yuzheng, CHANG Wenhan, WANG Rui, YU Han. Energy Management Strategy for Microgrid Cluster Based on Improved Double Deep Q-Network[J]. Electric Power, 2025, 58(10): 14-26.
| MG | 电池额定容 量/(kW·h) | 充放电 效率/% | 微燃机出力 上限/(kW·h) | 爬坡速率/ (kW·s–1) | 价格响应 负荷/kW | |||||
| 1 | 600 | 0.9 | 600 | 6 | 175 | |||||
| 2 | 1 000 | 0.9 | 800 | 6 | 150 | |||||
| 3 | 800 | 0.9 | 400 | 6 | 200 |
Table 1 Parameters of MGC system
| MG | 电池额定容 量/(kW·h) | 充放电 效率/% | 微燃机出力 上限/(kW·h) | 爬坡速率/ (kW·s–1) | 价格响应 负荷/kW | |||||
| 1 | 600 | 0.9 | 600 | 6 | 175 | |||||
| 2 | 1 000 | 0.9 | 800 | 6 | 150 | |||||
| 3 | 800 | 0.9 | 400 | 6 | 200 |
| 时段 | 购电电价/(元·(kW·h)–1) | 售电电价/(元·(kW·h)–1) | ||
| 11:00—16:00 19:00—22:00 | 1.079 | 0.845 | ||
| 08:00—11:00 16:00—19:00 22:00—00:00 | 0.637 | 0.494 | ||
| 00:00—08:00 | 0.421 | 0.322 |
Table 2 Distribution network purchase and sale electricity price
| 时段 | 购电电价/(元·(kW·h)–1) | 售电电价/(元·(kW·h)–1) | ||
| 11:00—16:00 19:00—22:00 | 1.079 | 0.845 | ||
| 08:00—11:00 16:00—19:00 22:00—00:00 | 0.637 | 0.494 | ||
| 00:00—08:00 | 0.421 | 0.322 |
| 超参数 | 数值 | |
| 奖励折扣率 | 0.99 | |
| 学习率 | 0.001 | |
| 目标网络Q网络更新权值的步数C | 200 | |
| 最大探索率 | 0.3 | |
| 最小探索率 | 0.01 |
Table 3 MGC model training parameters
| 超参数 | 数值 | |
| 奖励折扣率 | 0.99 | |
| 学习率 | 0.001 | |
| 目标网络Q网络更新权值的步数C | 200 | |
| 最大探索率 | 0.3 | |
| 最小探索率 | 0.01 |
| 参数设置 | 平均奖励 收敛值 | 收敛轮数 | 后50%训练周 期方差 | |||||
| 0.1 | 0.01 | – | 843 | 32.74 | ||||
| 0.2 | 0.01 | –975.6 | 693 | 26.17 | ||||
| 0.3 | 0.01 | –813.7 | 540 | 12.49 | ||||
| 0.4 | 0.01 | –891.1 | 652 | 19.21 | ||||
| 0.3 | 0 | –873.9 | 581 | 15.76 | ||||
| 0.3 | 0.10 | –858.4 | 603 | 46.59 | ||||
Table 4 Performance comparison of improved DDQN algorithm with different parameters
| 参数设置 | 平均奖励 收敛值 | 收敛轮数 | 后50%训练周 期方差 | |||||
| 0.1 | 0.01 | – | 843 | 32.74 | ||||
| 0.2 | 0.01 | –975.6 | 693 | 26.17 | ||||
| 0.3 | 0.01 | –813.7 | 540 | 12.49 | ||||
| 0.4 | 0.01 | –891.1 | 652 | 19.21 | ||||
| 0.3 | 0 | –873.9 | 581 | 15.76 | ||||
| 0.3 | 0.10 | –858.4 | 603 | 46.59 | ||||
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