A Review of Operation of Natural Gas-Electricity Coupling System Considering Power-to-Gas Technology

被引:0
作者
Dou X. [1 ]
Zhao W. [1 ]
Lang Y. [2 ]
Li Y. [2 ]
Gao C. [2 ]
机构
[1] College of Electrical Engineering and Control Science, Nanjing TECH University, Nanjing, 211816, Jiangsu Province
[2] School of Electrical Engineering, Southeast University, Nanjing, 210096, Jiangsu Province
来源
Dianwang Jishu/Power System Technology | 2019年 / 43卷 / 01期
关键词
Coupling system; Optimal dispatch; Power to gas;
D O I
10.13335/j.1000-3673.pst.2017.2964
中图分类号
学科分类号
摘要
Power-to-gas (P2G) technology can realize large-scale storage of electric energy in the form of natural gas, building closed-loop energy flow between power system and natural gas system, and promoting coupling of these two systems. Optimal operation of natural gas-electricity coupling system is the basis for optimizing resource allocation and improving utilization efficiency of energy dispatching. It is of great significance for improving comprehensive benefits of the system. Firstly, this paper presents the characteristics of P2G technology, and then summarizes the modeling method of natural gas-power coupling system based on P2G coupling operation optimization model and solving method for different scenarios. Finally, the application status of P2G technology in China and abroad is summarized. The development bottlenecks and solutions of P2G technology in different application scenarios and the future research direction of P2G technology is prospected. © 2019, Power System Technology Press. All right reserved.
引用
收藏
页码:165 / 173
页数:8
相关论文
共 47 条
[1]  
Wang C., Yu B., Xiao J., Et al., Sizing of energy storage systems for output smoothing of renewable energy systems, Proceedings of the CSEE, 32, 16, pp. 1-8, (2012)
[2]  
Jentsch M., Trost T., Sterner M., Optimal Use of power-to-gas energy storage systems in an 85% renewable energy scenario, Energy Procedia, 46, pp. 254-261, (2014)
[3]  
Liu M., Yu B., Xu J., Efficiency of solid oxide water electrolysis system for hydrogen production, Journal of Tsinghua University(Sci & Tech), 49, 6, pp. 868-871, (2009)
[4]  
Zhang W., Yu B., Chen J., Et al., Hydrogen production through solid oxide electrolysis at elevated temperatures, Progress in Chemistry, 20, 5, pp. 778-787, (2008)
[5]  
Li Y., Liu W., Zhao J., Et al., Optimal dispatch of combined electricity-gas-heat energy systems with power-to-gas devices and benefit analysis of wind power accommodation, Power System Technology, 40, 12, pp. 3680-3689, (2016)
[6]  
Saldarriaga C.A., Hincapie R.A., Salazar H., A holistic approach for planning natural gas and electricity distribution networks, IEEE Transactions on Power Systems, 28, 4, pp. 4052-4063, (2013)
[7]  
Qiu J., Dong Z.Y., Zhao J.H., Et al., Multi-stage flexible expansion co-planning under uncertainties in a combined electricity and gas market, IEEE Transactions on Power Systems, 30, 4, pp. 2119-2129, (2015)
[8]  
Zhang X., Shahidehpour M., Alabdulwahab A., Et al., Optimal expansion planning of energy hub with multiple energy infrastructures, IEEE Transactions on Smart Grid, 6, 5, pp. 2302-2311, (2017)
[9]  
Yuan T., Li G., Zhang Z., Et al., Optimal modeling on equipment investment planning of wind power-hydrogen energy storage and coal chemical pluripotent coupling system, Transactions by China Electrotechnical Society, 31, 14, pp. 21-30, (2016)
[10]  
Shao C., Wang X., Wang X., Et al., Probe into analysis and planning of multi-energy systems, Proceedings of the CSEE, 36, 14, pp. 3817-3828, (2016)