中国电力 ›› 2024, Vol. 57 ›› Issue (9): 136-145.DOI: 10.11930/j.issn.1004-9649.202310058
谭玲玲1(), 汤伟1, 楚冬青1, 李竞锐2(
), 张玉敏2, 吉兴全2
收稿日期:
2023-10-23
出版日期:
2024-09-28
发布日期:
2024-09-23
作者简介:
谭玲玲(1979—),女,高级工程师,从事电力系统及其自动化研究,E-mail:tanlingling@sdepci.com基金资助:
Lingling TAN1(), Wei TANG1, Dongqing CHU1, Jingrui LI2(
), Yumin ZHANG2, Xingquan JI2
Received:
2023-10-23
Online:
2024-09-28
Published:
2024-09-23
Supported by:
摘要:
针对综合能源系统(integrated energy system,IES)中各主体间交互关系复杂、利益冲突显著的问题,提出了基于主从博弈的电热氢综合能源系统优化调度模型。首先,在分析氢能“产消一体化”传输特性的基础上,构建计及氢能全过程充分利用的能源生产商(energy producer,EP)模型;其次,分析EP、负荷聚合商(load aggregator,LA)及能源销售商(energy system operator,ESO)之间的价格信息交互关系,考虑负荷聚合商在需求响应机制下的资源整合效用,建立IES中各利益主体的收益模型;最后,引入“主从博弈”思想,建立以ESO为主导者,采用遗传算法和二次规划相结合的方法,对以EP和LA为跟随者的一主多从Stackelberg博弈模型进行求解。以中国北部某地区的园区IES为例,验证了该模型在促进各主体间利益均衡及共同获利方面的有效性。
谭玲玲, 汤伟, 楚冬青, 李竞锐, 张玉敏, 吉兴全. 基于主从博弈的电热氢综合能源系统优化运行[J]. 中国电力, 2024, 57(9): 136-145.
Lingling TAN, Wei TANG, Dongqing CHU, Jingrui LI, Yumin ZHANG, Xingquan JI. Optimal Dispatching of Electric-Heat-Hydrogen Integrated Energy System Based on Stackelberg Game[J]. Electric Power, 2024, 57(9): 136-145.
参数 | 数值 | |
燃气发电机容量/kW | 500 | |
锅炉容量/kW | 800 | |
发电机电效率 | 0.35 | |
余热回收效率 | 0.83 | |
热交换器效率 | 0.80 | |
用户对电能偏好常系数 | ||
用户对热能偏好常系数 |
表 1 园区IES系统参数
Table 1 Parameters of EP system
参数 | 数值 | |
燃气发电机容量/kW | 500 | |
锅炉容量/kW | 800 | |
发电机电效率 | 0.35 | |
余热回收效率 | 0.83 | |
热交换器效率 | 0.80 | |
用户对电能偏好常系数 | ||
用户对热能偏好常系数 |
参数 | 数值/(元·(kW·h)–1) | |
上网电价 | 0.35 | |
热价上限 | 0.50 | |
热价下限 | 0.15 | |
平均售电电价约束 | 0.70 | |
平均售热热价约束 | 0.45 | |
供热中断惩罚系数 | 2.00 |
表 2 园区IES经济参数
Table 2 Economic parameters of EP system
参数 | 数值/(元·(kW·h)–1) | |
上网电价 | 0.35 | |
热价上限 | 0.50 | |
热价下限 | 0.15 | |
平均售电电价约束 | 0.70 | |
平均售热热价约束 | 0.45 | |
供热中断惩罚系数 | 2.00 |
方案 | ESO收益/元 | EP收益/元 | LA消费者剩余/元 | |||
1 | ||||||
2 | ||||||
3 |
表 3 各主体收益
Table 3 Benefits of all agents
方案 | ESO收益/元 | EP收益/元 | LA消费者剩余/元 | |||
1 | ||||||
2 | ||||||
3 |
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