上海交通大学学报 ›› 2024, Vol. 58 ›› Issue (1): 1-10.doi: 10.16183/j.cnki.jsjtu.2022.321

• 新型电力系统与综合能源 •    下一篇

基于用户分类的综合能源系统低碳运行策略

张春雁1, 窦真兰1, 白冰青2, 王玲玲2(), 蒋传文2, 熊展2   

  1. 1.国网上海综合能源服务有限公司,上海200023
    2.上海交通大学 电力传输与功率变换控制教育部重点实验室,上海 200240
  • 收稿日期:2022-08-19 修回日期:2022-09-28 接受日期:2022-10-27 出版日期:2024-01-28 发布日期:2024-01-16
  • 通讯作者: 王玲玲,博士,助理研究员;E-mail:himalayart@163.com.
  • 作者简介:张春雁(1967-),硕士,从事电力与能源工程建设、安全生产、技术管理和科技创新等工作.
  • 基金资助:
    上海市科技计划资助项目(21DZ1208400)

Low-Carbon Operation Strategy of Integrated Energy System Based on User Classification

ZHANG Chunyan1, DOU Zhenlan1, BAI Bingqing2, WANG Lingling2(), JIANG Chuanwen2, XIONG Zhan2   

  1. 1. State Grid Shanghai Integrated Energy Service Co., Ltd., Shanghai 200023, China
    2. Key Laboratory of Control of Power Transmission and Conversion of the Ministry of Education, Shanghai Jiao Tong University, Shanghai 200240, China
  • Received:2022-08-19 Revised:2022-09-28 Accepted:2022-10-27 Online:2024-01-28 Published:2024-01-16

摘要:

综合能源系统 (IES) 是实现“双碳”目标的重要手段,然而系统内部不同类型用户用能行为各异,使得IES协调优化与低碳运行难度增加.为了充分发挥用户的主观能动性,基于用户行为分析对IES的用户行为进行建模,并通过卷积神经网络将用户分为激进型和保守型.构建IES运营商决策模型,确定电热能源的供应方式,针对不用类型用户设计相应的能源套餐.基于实际数据分析上述模型和方法的有效性,验证了用户分类在IES低碳运行中的价值.

关键词: 用户分类, 用户行为, 综合能源系统, 低碳运行

Abstract:

Integrated energy system (IES) is an important means to achieve the goal of “carbon peaking and carbon neutrality”. However, different types of users in the system have different energy consumption behaviors, which makes the coordinated optimization and low-carbon operation of the integrated energy system more difficult. In order to give full play to the subjective initiative of users, the user behavior of the integrated energy system is modelled based on user behavior analysis, and users are classified into aggressive and conservative types by convolutional neural network (CNN). Then, the decision model of integrated energy system operator is constructed to determine the supply mode of electric heating energy, and the corresponding energy package is designed for different types of users. Finally, the effectiveness of the above models and methods is analyzed based on actual data, and the value of user classification in low-carbon operation of integrated energy systems is verified.

Key words: user classification, user behavior, integrated energy system (IES), low-carbon operation

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