Overview of Energy Storage Technology in Smart Grid

Article Preview

Abstract:

Energy storage technology is a vital part of smart grid, and it can be utilized for grid-connection of renewable energy generation. In this paper, several kinds of energy storage technologies are introduced. Comparison of advantages and disadvantages of each technology is made, and the trend and development potentiality in China have been elaborated.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 805-806)

Pages:

543-546

Citation:

Online since:

September 2013

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2013 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Kai Xie, Yong-qi Liu, For the future smart grid, Electric Power, Vol. 41, No. 6, 2008. (In Chinese).

Google Scholar

[2] Jing Zhang, 200 Questions of Smart Grid. China Electric Power Press. 2011. (In Chinese).

Google Scholar

[3] Lin Zhou, Yong Huang, Ke Guo, Yu Feng, A Survey of Energy Storage Technology for Micro Grid, Power System Protection and Control, V01. 39. No. 7, 2011. (In Chinese).

Google Scholar

[4] Satish Samineni, Modeling and Analysis of a Flywheel Energy Storage System for Voltage Sag Correction[D], University of Idaho.

Google Scholar

[5] Yan Jun, Energy Storage for Distributed Generation, North China Electric Power, NO. 10, 2006. (In Chinese).

Google Scholar

[6] Ling-yi Kong, Li-ying Liao, Hai-wu Zhang, Jia-wan Zhao, Application of Battery Energy Storage System in Power System, Chinese Journal of Power Sourse, NO. 5, 2008. (In Chinese).

Google Scholar

[7] Zeng-fu Wei, Jin Zheng, Energy Storage Techniques Applied in Smart Grid, Guangdong Electric Power, V01. 23, N0. 11, 2010. (In Chinese).

Google Scholar

[8] http: /www. escn. com. cn/2010/0918/251. html.

Google Scholar

[9] Xi-kun Chen, Shuang-qing Tang, Gang Liu, Application of Flywheel Energy Storage Battery in Wind Power System of Net Work-forming, Machinery&Electronics, (2005).

Google Scholar

[10] R Cardenas, R Pena, J Clare, Control Strategy for Power Smoothing Vector Controlled Induction Machine and Flywheel[J]. Electronics Letters, 36(8), (2000).

DOI: 10.1049/el:20000437

Google Scholar

[11] Shinichi Nomura, Norihiro Tanaka, Kenji Tsuboi, Hiroaki Tsutsui, Shunji Tsuji-Iio, Design Considerations for SMES Systems Applied to HVDC Links, Tokyo Institute of Technology.

Google Scholar

[12] Henry Loui, Kai Strunz, Superconducting Magnetic Energy Storage (SMES) for Energy Cache Control in Modular Distributed Hydrogen-Electric Energy Systems, IEEE Transactions on Applied Superconductivity, VOL. 17, NO. 2, (2007).

DOI: 10.1109/tasc.2007.898490

Google Scholar

[13] Hui Zhang, Wang Xin, Ren Jing , Research on superconducting magnetic energy storage in the photovoltaic distributed generation, IEEE Transactions on Applied Superconductivity, (2009).

DOI: 10.1109/ipemc.2009.5157767

Google Scholar

[14] Byung-Kwan Kang, Seung-TakKim, Byung-Chul Sung, Jung-Wook Park, A Study on Optimal Sizing of Superconducting Magnetic Energy Storage in Distribution Power System, IEEE Transactions on Applied Superconductivity, VOL. 22, NO. 3, (2012).

DOI: 10.1109/tasc.2011.2174571

Google Scholar

[15] Si-bo Wang, Tong-zhen Wei, Zhi-ping Qi, Energy Saving System Based on Supercapacitor, Proceedings of the CSEE, Vol. 30 No. 9, (2010).

Google Scholar

[16] R.A. Dougal, Shengyi Liu, Ralph E. White. Power and Life Extension of Battery-Ultracapacitor Hybrids. IEEE Transactions on Components and Packging Technology, Vol. 25, NO. 1, (2002).

DOI: 10.1109/6144.991184

Google Scholar

[17] Zhen-hao Wang, Yan-qi Zhang, Guo-qing Li, Ye-chun Xin, Research on Hybrid Energy Storage for DC System of Substations and Power Plants Based on Super Capacitors, Power System Technology, Vol. 34 No. 4, 2010. (In Chinese).

Google Scholar