Journal Home Online First Current Issue Archive For Authors Journal Information 中文版

Strategic Study of CAE >> 2018, Volume 20, Issue 3 doi: 10.15302/J-SSCAE-2018.03.019

Key Technology Analysis of Demand-Side Smart Energy System

1. Key Laboratory of Intelligent Power Grid of Ministry of Education, Tianjin University, Tianjin 300072, China;

2. Key Laboratory of Green Energy Technology of Guangdong Province, School of Electric Power, South China University of Technology, Guangzhou 510640, China

Funding project:CAE Advisory Project “Strategic Research on the Technological Trend and System of the Energy Technology Revolution in China” (2015-ZD-09); National Key Research and Development Project (2018YFB0905000) Received: 2018-06-10 Revised: 2018-06-20 Available online: 2018-09-04 15:38:31.000

Next Previous

Abstract

As an important part of the Energy Internet, the demand-side smart energy system is an important form of energy system in the future. It is of great significance for realizing the distributed local consumption of renewable energy and improving the efficiency of terminal energy utilization. This paper discusses the characteristics of the demand-side smart energy system, listing the key equipment and technologies related to energy production, transmission, distribution, conversion, storage, and consumption of the demand-side energy system, as well as analyzing the industrial development model. Finally, the development prospects of the demand-side smart energy system are further elaborated in the stages of experimental demonstration, application promotion, general application and complete marketization.

Figures

Fig. 1

Fig. 2

Fig. 3

Fig. 4

Fig. 5

Fig. 6

References

[ 1 ] Jia H J, Wang D, Xu X D, et al. Research on some key problems related to integrated energy systems [J]. Automation of Electric Power Systems, 2015, 39(7): 198–207. Chinese. link1

[ 2 ] Wang C S, Wang D, Zhou Y. Framework analysis and technical challenges to smart distribution system [J]. Automation of Electric Power Systems, 2015, 39(9): 2–9. Chinese. link1

[ 3 ] Yu X D, Xu X D, Chen S Y, et al. A brief review to integrated energy system and energy internet [J]. Transactions of China Electrotechnical Society, 2016, 31(1): 1–13. Chinese. link1

[ 4 ] Li L C, Zhang Y J, Chen Z X, et al. Merger between smart grid and energy-net: Mode and development prospects [J]. Automation of Electric Power Systems, 2016, 40(11): 1–9. Chinese. link1

[ 5 ] Wang C S, Li P. Development and challenges of distributed generation, the micro-grid and smart distribution system [J]. Automation of Electric Power Systems, 2010, 34(2): 10–14. Chinese. link1

[ 6 ] Yuan X M, Cheng S J, Wen J Y. Prospects analysis of energy storage application in grid integration of large-scale wind power [J]. Automation of Electric Power Systems, 2013, 37(1): 14–18. Chinese. link1

[ 7 ] Wang C M, Sun W Q, Yi T, et al. Review on energy storage application planning and benefit evaluation methods in smart grid [J]. Proceedings of the CSEE, 2013, 33(7): 33–41. Chinese. link1

[ 8 ] Geidl M, Koeppel G, Favre-Perrod P, et al. Energy hubs for the future [J]. Power & Energy Magazine IEEE, 2007, 5(1): 24–30. link1

[ 9 ] Zhang Q, Wang X F, Wang J X, et al. Survey of demand response research in deregulated electricity markets [J]. Automation of Electric Power Systems, 2008, 32(3): 97–106. Chinese. link1

[10] Xu Y Q, Li X D, Zhang J G, et al. Research on distribution network planning considering DGs [J]. Power System Protection & Control, 2011, 39(1): 87–91. Chinese. link1

[11] Yang S C, Tang B Q, Yao J G, et al. Architecture and key technologies for situational awareness based automatic intelligent dispatching of power grid [J]. Power System Technology, 2014, 38(1): 33–39. Chinese. link1

[12] Xu R Z, Wang Y F. A study on electric power information network-oriented security situation awareness [J]. Power System Technology, 2013, 37(1): 53–57. Chinese. link1

[13] Guo J C, Qian J, Chen G, et al. Technical scheme of smart distribution grid dispatching and control systems [J]. Automation of Electric Power Systems, 2015, 39(1): 206–212. Chinese. link1

[14] Chen X Y, Chen K, Liu J, et al. A distribution network intelligent dispatching mode and its key techniques [J]. Automation of Electric Power Systems, 2012, 36(18): 22–26. Chinese. link1

[15] Liu W, Guo Z Z. Research on security indices of distribution networks [J]. Proceedings of the CSEE, 2003, 23(8): 85–90. Chinese. link1

[16] Liu J, Xu J Q, Dong H P. Security analysis of distribution net works [J]. Automation of Electric Power Systems, 2003, 27(17): 26–30. Chinese. link1

[17] Lin B Q, Yao X, Liu X Y. The strategic adjustment of China’s energy use structure in the context of energy-saving and carbon emission-reducing initiatives [J]. Transactions of China Electro technical Society, 2010 (1): 58–71. Chinese. link1

[18] Liu Q G. Strategic choice for national adjustment of energy structure [J]. Advances in Earth Science, 2000, 15(2): 154–164. Chinese. link1

[19] Yao J G, Yang S C, Wang K, et al. Framework and strategy design of demand response scheduling for balancing wind power fluctuation [J]. Automation of Electric Power Systems, 2014, 38(9): 85–92. Chinese. link1

[20] Wang C S, Hong B W, Guo L, et al. A general modeling method for optimal dispatch of combined cooling, heating and power mi- crogrid [J]. Proceedings of the CSEE, 2013, 33(31): 26–33. Chinese. link1

[21] Wu X, Wang X L, Wang J X, et al. Economic generation scheduling of a microgrid using mixed integer linear programming [J]. Proceedings of the CSEE, 2013, 33(28): 1–8. Chinese. link1

[22] Tian S M, Luan W P, Zhang D X, et al. Technical forms and key technologies on energy internet [J]. Proceedings of the CSEE, 2015, 35(14): 3482–3494. Chinese. link1

[23] Xie G H, Li Q H. Important fields and key technologies of innovation for global energy interconnection [J]. Electric Power, 2016, 49(3): 18–23. Chinese. link1

[24] Zha Y B, Zhang T, Huang Z, et al. Analysis of energy internet key technologies [J]. Scientia Sinica (Informationis), 2014, 44(6): 702–713. Chinese. link1

[25] Sun H B, Guo Q L, Pan Z G. Energy internet: Concept, architecture and frontier outlook [J]. Automation of Electric Power Systems, 2015 (19): 1–8. Chinese. link1

[26] Liu D N, Zeng M, Huang R L, et al. Business models and market mechanisms of E-Net (2) [J]. Power System Technology, 2015, 39(11): 3057–3063. Chinese. link1

[27] Jiang Y B, Song Y H, Ding Y, et al. Review of risk assessment for energy internet part II: Information and market level [J]. Proceedings of the CSEE, 2016, 36(15): 4023–4033. Chinese. link1

[28] Sun H B, Guo Q L, Pan Z G, et al. Energy internet: Driving force, review and outlook [J]. Power System Technology, 2015 (11): 3005–3013. Chinese. link1

[29] Jentsch M, Trost T, Sterner M. Optimal use of power-to-gas energy storage systems in an 85% renewable energy scenario [J]. Energy Procedia, 2014, 46: 254–261. link1

[30] Ahern E P, Deane P, Persson T, et al. A perspective on the potential role of renewable gas in a smart energy island system [J]. Renewable Energy, 2015, 78: 648–656. link1

Related Research