Hybrid Electric Springs for Grid-Tied Power Control and Storage Reduction in AC Microgrids

被引:32
作者
Wang, Ming-Hao [1 ]
Yang, Tian-Bo [1 ]
Tan, Siew-Chong [1 ]
Hui, S. Y. [1 ,2 ]
机构
[1] Univ Hong Kong, Dept Elect & Elect Engn, Hong Kong, Peoples R China
[2] Imperial Coll London, Dept Elect & Elect Engn, London SW7 2AZ, England
关键词
Electric spring (ES); energy storage reduction; power control; renewable energy; smart grid; ENERGY-STORAGE; VOLTAGE; GENERATION;
D O I
10.1109/TPEL.2018.2854569
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The renewable generations (RGs) are conventionally interfaced with the utility grid through battery energy storage systems (BESS). In this cascaded configuration of the grid-connected inverter, battery, and RG, the power of the battery is passively governed by the power difference between the RG and the grid. This compromises the state-of-charge (SoC) control of the battery and increases the storage capacity. To address this issue, a hybrid electric spring (HES), which is integrated with the RGand noncritical load (NCL), is proposed in this paper for the grid-tied power control and reduction of battery storage capacity in ac microgrids. Such an integrated configuration enables a flexible control of the power flow among battery, NCL, and grid. On top of that, the proposed HES can achieve an extended operating region of gridtied power control compared with the conventional BESS and the existing electric springs. The operating principle, steady-state analysis, and control design of the HES are discussed. The functions of the grid-tied power control and battery SoC control are verified experimentally and through simulations.
引用
收藏
页码:3214 / 3225
页数:12
相关论文
共 25 条
[1]   Dynamic Droop Control for Wind Turbines Participating in Primary Frequency Regulation in Microgrids [J].
Arani, Mohammadreza Fakhari Moghaddam ;
Mohamed, Yasser Abdel-Rady I. .
IEEE TRANSACTIONS ON SMART GRID, 2018, 9 (06) :5742-5751
[2]  
Bakken D.E., 2011, IEEE International Conference on Smart Grid Communications (SmartGridComm), P7
[3]   The Balance of Renewable Sources and User Demands in Grids: Power Electronics for Modular Battery Energy Storage Systems [J].
Bragard, Michael ;
Soltau, Nils ;
Thomas, Stephan ;
De Doncker, Rik W. .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2010, 25 (12) :3049-3056
[4]  
Chowdhury S., 2009, Microgrids and active distribution nerworks
[5]   The Next Generation of Power Distribution Systems [J].
Heydt, G. T. .
IEEE TRANSACTIONS ON SMART GRID, 2010, 1 (03) :225-235
[6]   Fundamentals of battery dynamics [J].
Jossen, A .
JOURNAL OF POWER SOURCES, 2006, 154 (02) :530-538
[7]  
Kawachi S., 2010, P 14 POW EL MOT CONT, pT11
[8]   Improving Wind Farm Dispatch in the Australian Electricity Market With Battery Energy Storage Using Model Predictive Control [J].
Khatamianfar, Arash ;
Khalid, Muhammad ;
Savkin, Andrey V. ;
Agelidis, Vassilios G. .
IEEE TRANSACTIONS ON SUSTAINABLE ENERGY, 2013, 4 (03) :745-755
[9]   A comprehensive review on large-scale photovoltaic system with applications of electrical energy storage [J].
Lai, Chun Sing ;
Jia, Youwei ;
Lai, Loi Lei ;
Xu, Zhao ;
McCulloch, Malcolm D. ;
Wong, Kit Po .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 78 :439-451
[10]   Reduction of Energy Storage Requirements in Future Smart Grid Using Electric Springs [J].
Lee, Chi Kwan ;
Hui, Shu Yuen .
IEEE TRANSACTIONS ON SMART GRID, 2013, 4 (03) :1282-1288