Cooperative Operation for Multiple Integrated Energy Systems Considering Wind Power Consumption by Nash Bargaining Convention

被引:0
|
作者
Shuai X. [1 ]
Wang X. [1 ]
Wang Z. [1 ]
Guo H. [1 ]
Ma Z. [2 ]
机构
[1] School of Electrical Engineering, Xi'an Jiaotong University, Xi'an
[2] Electric Power Research Institute of State Grid Gansu Electric Power Company, Lanzhou
关键词
Cooperative game; Heat-electricity integrated energy system; Multi-objective optimization; Nash bargaining; Wind power consumption;
D O I
10.7652/xjtuxb202203019
中图分类号
学科分类号
摘要
To effectively improve energy efficiency of multiple HE-IESs, aiming at the cost sharing problem of multiple HE-IESs coordinated operation taking wind power consumption into account, a multi-HE-IESs multi-objective optimization operation model with Nash bargaining theory is proposed. The framework of multi-HE-IESs is constructed to model gas turbine, heat pump, electric energy storage, thermal energy storage and the other equipments in HE-IES, and multiple power interaction models among HE-IESs and between HE-IES and distribution network are established. Taking operating costs and wind power consumption of multi-HE-IESs as the indicators, the multi-objective weighted programming method is used to establish a multi-HE-IESs multi-objective optimization model. Furthermore, following Nash bargaining theory, a cooperative game model of multi-HE-IESs is constructed, and the non-convex problem is transformed into two convex sub-problems via mathematical transformation to realize the Pareto optimum for each HE-IES, which ensures the enthusiasm of all HE-IESs to participate in cooperation. A simulation example verifies that the proposed method enables to reduce total operating costs and total wind curtailment costs by 660.14 and 222.03 yuan, respectively, and also to reduce operating costs and wind curtailment costs of each HE-IES by 220.05 and 74.07 yuan, thus the Pareto optimum of overall HE-IESs is achieved. © 2022, Editorial Office of Journal of Xi'an Jiaotong University. All right reserved.
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页码:187 / 196
页数:9
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共 23 条
  • [1] RIFKIN J., Third industrial revolution: how lateral power is transforming energy, the economy, and the world, pp. 33-72, (2011)
  • [2] SUN Hongbin, GUO Qinglai, PAN Zhaoguang, Et al., Energy Internet: driving force, review and outlook, Power System Technology, 39, 11, pp. 3005-3013, (2015)
  • [3] WANG Chunxiao, YAN Chao, ZHANG Yao, Et al., CVaR based risk-averse unit commitment of integrated electricity and natural gas system, Journal of Xi'an Jiaotong University, 54, 6, pp. 17-27, (2020)
  • [4] MOHSENIAN-RAD H., Coordinated price-maker operation of large energy storage units in nodal energy markets, IEEE Transactions on Power Systems, 31, 1, pp. 786-797, (2016)
  • [5] HE Limei, WANG Kaike, CAO Ganglin, Et al., Integrated energy system based on reversible proton exchange membrane fuel cell and expander, Journal of Xi'an Jiaotong University, 54, 3, pp. 97-105, (2020)
  • [6] JIA Hongjie, MU Yunfei, YU Xiaodan, Thought about the integrated energy system in China, Electric Power Construction, 36, 1, pp. 16-25, (2015)
  • [7] LI Peng, YANG Yulong, HUANG Yuehui, Et al., Wind power integration in provincial power grid under electricity and heating load control, Journal of Xi'an Jiaotong University, 48, 2, pp. 69-73, (2014)
  • [8] XU Hanping, LI Yaowang, MIAO Shihong, Et al., Optimization dispatch strategy considering renewable energy consumptive benefits based on "source-load-energy storage" coordination in power system, Power System Protection and Control, 45, 17, pp. 18-25, (2017)
  • [9] SUN Qiang, XIE Dian, NIE Qingyun, Et al., Research on economic optimization scheduling of park integrated energy system with electricity-heat-cool-gas load, Electric Power, 53, 4, pp. 79-88, (2020)
  • [10] DONG Haiying, YUN Yunyun, MA Zhicheng, Et al., Low-carbon optimal operation of integrated energy system considering multi-energy conversion and concentrating solar power plant participation, Power System Technology, 44, 10, pp. 3689-3700, (2020)