Low-carbon optimal operation of the integrated energy system considering integrated demand response

被引:3
作者
Ji, Xiu [1 ]
Li, Meng [2 ]
Li, Meiyue [2 ]
Han, Huanhuan [2 ]
机构
[1] Changchun Inst Technol, Natl Local Joint Engn Res Ctr Smart Distribut Grid, Changchun, Peoples R China
[2] Changchun Inst Technol, Changchun, Peoples R China
关键词
integrated energy system; integrated demand response; green certificate-carbon trading mechanism; demand response sensitivity; ladder carbon trading mechanism parameters;
D O I
10.3389/fenrg.2023.1283429
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In order to further reduce the carbon emission level of the integrated energy system and improve the system operation economy, a low-carbon economic dispatch strategy for the integrated energy system considering comprehensive demand response is proposed. First, based on the composition and operating characteristics of the integrated energy system, two demand response models, price-based and substitution-based, are established. Secondly, based on the ladder-type carbon trading mechanism and the green certificate trading mechanism, a green certificate-carbon trading mechanism model is designed to construct a ladder-type carbon trading mechanism model. A comprehensive energy system low-carbon economic dispatch model with the lowest system operating cost is composed of carbon transaction costs, energy purchase costs, operation and maintenance costs, green certificate trading income and wind and light abandonment costs. Finally, through simulation experiments, this paper is verified the effectiveness of the proposed model is analyzed, and the impact of demand response sensitivity and ladder-type carbon trading mechanism parameters on system dispatch results is analyzed.
引用
收藏
页数:15
相关论文
共 20 条
[1]   Analyzing the carbon mitigation potential of tradable green certificates based on a TGC-FFSRO model: A case study in the Beijing-Tianjin-Hebei region, China [J].
Chen, Cong ;
Zhu, Ying ;
Zeng, Xueting ;
Huang, Guohe ;
Li, Yongping .
SCIENCE OF THE TOTAL ENVIRONMENT, 2018, 630 :469-486
[2]  
Chen H., 2021, Dianli Xit. Baohu yu Kongzhi/Power Syst. Prot. Control, V49
[3]  
Cui Y., 2021, Dianli Zidonghua Shebei/Electric Power Autom. Equip, V41
[4]  
Dong F., 2019, Dianli Xit. Zidonghua/Automation Electr. Power Syst, V43
[5]   Resilient Configuration Approach of Integrated Community Energy System Considering Integrated Demand Response Under Uncertainty [J].
Guo, Zun ;
Li, Gengyin ;
Zhou, Ming ;
Feng, Wei .
IEEE ACCESS, 2019, 7 :87513-87533
[6]   Optimal scheduling of integrated energy system under the background of carbon neutrality [J].
Lv, Ganyun ;
Cao, Bin ;
Jun, Li ;
Liu, Guanghui ;
Ding, Yuhao ;
Yu, Jicheng ;
Zang, Yu ;
Zhang, Dongdong .
ENERGY REPORTS, 2022, 8 :1236-1248
[7]   Modeling and optimization of combined heat and power with power-to-gas and carbon capture system in integrated energy system [J].
Ma, Yiming ;
Wang, Haixin ;
Hong, Feng ;
Yang, Junyou ;
Chen, Zhe ;
Cui, Haoqian ;
Feng, Jiawei .
ENERGY, 2021, 236
[8]   Power-to-gas utilization in optimal sizing of hybrid power, water, and hydrogen microgrids with energy and gas storage [J].
Mehrjerdi, Hasan ;
Saboori, Hedayat ;
Jadid, Shahram .
JOURNAL OF ENERGY STORAGE, 2022, 45
[9]  
Peng Q., 2020, Dianwang Jishu/Power Syst. Technol, V44
[10]   Low Carbon Oriented Expansion Planning of Integrated Gas and Power Systems [J].
Qiu, Jing ;
Dong, Zhao Yang ;
Zhao, Jun Hua ;
Meng, Ke ;
Zheng, Yu ;
Hill, David J. .
IEEE TRANSACTIONS ON POWER SYSTEMS, 2015, 30 (02) :1035-1046