Generalized Composite Load Mode of Distribution Network Considering Battery Energy Storage System

被引:0
作者
Qu X. [1 ]
Li X. [2 ]
Sheng Y. [1 ]
Xiao J. [1 ]
Xu Z. [1 ]
机构
[1] School of Electrical Engineering, University of South China, Hengyang
[2] School of Electrical and Information Engineering, Hunan University, Changsha
来源
Gaodianya Jishu/High Voltage Engineering | 2020年 / 46卷 / 02期
关键词
Battery energy storage system; Generalized composite load model; Generalized load; Load modeling; Power system;
D O I
10.13336/j.1003-6520.hve.20200131013
中图分类号
学科分类号
摘要
We studied the generalized composite load model for distribution network containing a battery energy storage system (BESS) to participate in power grid simulation, expounded the simulation mathematical model of BESS, and established a BESS simulation platform based on MATLAB/Simulink. Through the simulation analysis of transient operation characteristics of BESS, we put forward and verified a load-oriented BESS equivalent model, and then proposed a generalized composite load model of distribution network considering BESS, which is composed of the BESS equivalent model and the classical composite load model in parallel. Finally, the validity and parameter value stability of the proposed generalized integrated load model are verified by multi-scenario simulation analyses. © 2020, High Voltage Engineering Editorial Department of CEPRI. All right reserved.
引用
收藏
页码:490 / 499
页数:9
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共 22 条
  • [11] Price W.W., Taylor C.W., Rogers G.J., Standard load models for power flow and dynamic performance simulation, IEEE Transactions on Power Systems, 10, 3, pp. 1302-1313, (1995)
  • [12] Huang J., Li X., Cao Y., Et al., Battery energy storage power supply simulation model for power grid frequency regulation, Automation of Electric Power Systems, 39, 18, pp. 20-24, (2015)
  • [13] Fang Z., Song S., Lin Y., Et al., State estimation for active distribution system incorporating photovoltaic plat and battery energy storage system, Automation of Electric Power Systems, 43, 13, pp. 71-83, (2019)
  • [14] Ye X., Liu T., Wu G., Et al., Multi-time scale simulation modeling and characteristic analysis of large-scale grid-connected battery energy storage system, Proceedings of the CSEE, 35, 11, pp. 2635-2644, (2015)
  • [15] Wang H., Tang Y., Hou J., Et al., Composition modeling and equivalence of an integrated power generation system of wind, photovoltaic and energy storage unit, Proceedings of the CSEE, 31, 34, pp. 1-9, (2011)
  • [16] Kroeze R.C., Krein P.T., Electrical battery model for using dynamic electric vehicle simulations, IEEE Transactions on Power Systems, 23, 4, pp. 1336-1342, (2008)
  • [17] Li B., Tian L., Jin W., Et al., Modeling of scaled vanadium redox flow battery system, High Voltage Engineering, 41, 7, pp. 2194-2201, (2015)
  • [18] Li P., Qi X., Qu X., Et al., A generiliazed synthesis load model considering all-vanadium redox flow battery energy storage system, Journal of Hunan University (Natural Sciences), 45, 8, pp. 107-118, (2018)
  • [19] Chen M., Rincon-Mora G.A., Accurate electrical battery model capable of predicting runtime and I-V performance, IEEE Transactions on Energy Conversion, 21, 2, pp. 504-511, (2006)
  • [20] Benini L., Castelli G., Macci A., Et al., Discrete-time battery models for system-level low-power design, IEEE Transactions on Very Large Scale Integration Systems, 9, 5, pp. 630-640, (2001)