储能系统双向Buck-Boost变换器控制策略研究

龚春阳, 林嘉伟, 黄冬梅, 李辉, 王志新, 时帅, 胡安铎

太阳能学报 ›› 2023, Vol. 44 ›› Issue (2) : 229-238.

PDF(3704 KB)
欢迎访问《太阳能学报》官方网站,今天是
PDF(3704 KB)
太阳能学报 ›› 2023, Vol. 44 ›› Issue (2) : 229-238. DOI: 10.19912/j.0254-0096.tynxb.2021-1045

储能系统双向Buck-Boost变换器控制策略研究

  • 龚春阳1,2, 林嘉伟3, 黄冬梅4, 李辉2, 王志新3, 时帅1, 胡安铎4
作者信息 +

RESEARCH ON CONTROL STRATEGY OF BIDIRECTIONAL BUCK-BOOST CONVERTER IN ENERGY STORAGE SYSTEM

  • Gong Chunyang1,2, Lin Jiawei3, Huang Dongmei4, Li Hui2, Wang Zhixin3, Shi Shuai1, Hu Anduo4
Author information +
文章历史 +

摘要

为应对可再生能源出力波动引起储能系统功率流动方向的频繁变化,提出一种基于自抗扰控制和模型预测控制(ADRC+MPC)的储能系统双向Buck-Boost变换器控制策略。其中模型预测控制方法应用于电流内环,无需进行参数整定的同时,也提高了系统的响应速度;采用自抗扰控制策略的电压外环,通过在高频段降阶简化控制对象,达到降低自抗扰控制器复杂度的目的。仿真和样机实验显示当电感电流与输出电压参考值突变时,系统可分别在0.2与30 ms 内迅速调整到给定值;当负载与电源电压突变时,系统能在20 ms内恢复稳定。实验结果证明该文提出的控制方法优于PI+MPC策略,具有响应速度快、超调量和波动幅度小的特点。

Abstract

The wide application of energy storage system helps to improve the absorption capacity of renewable energy uhder high penetration rate. For restraining output fluctuations of renewable energy source and responding frequent changes in flow direction of energy storage system, a control strategy of bidirectional DC-DC converter in energy storage system based on active disturbance rejection control (ADRC) and model predictive control (MPC) is proposed. The current inner loop adopts a MPC method, which improves the response speed and does not require parameter tuning. The voltage outer loop adopts a reduced-order control strategy based on ADRC, which reduces the order of control object in the high frequency band and reduces the complexity of the controller. Simulation and experiment show that when inductor current and output voltage reference value change suddenly, system can quickly adjust to the given value within 0.2 ms and 30 ms respectively; when load and power supply voltage change suddenly, system can recover stability within 20 ms. The results verify that the method proposed in this paper has characteristics of fast response, small overshoot and fluctuation range in the adjustment process, which is superior to PI+MPC strategy.

关键词

双向Buck-Boost变换器 / 模型预测控制 / 自抗扰控制 / 储能系统 / 降阶控制策略

Key words

bidirectional Buck-Boost converter / MPC / ADRC / energy storage system / reduced-order control strategy

引用本文

导出引用
龚春阳, 林嘉伟, 黄冬梅, 李辉, 王志新, 时帅, 胡安铎. 储能系统双向Buck-Boost变换器控制策略研究[J]. 太阳能学报. 2023, 44(2): 229-238 https://doi.org/10.19912/j.0254-0096.tynxb.2021-1045
Gong Chunyang, Lin Jiawei, Huang Dongmei, Li Hui, Wang Zhixin, Shi Shuai, Hu Anduo. RESEARCH ON CONTROL STRATEGY OF BIDIRECTIONAL BUCK-BOOST CONVERTER IN ENERGY STORAGE SYSTEM[J]. Acta Energiae Solaris Sinica. 2023, 44(2): 229-238 https://doi.org/10.19912/j.0254-0096.tynxb.2021-1045
中图分类号: TK519   

参考文献

[1] 李建林, 马会萌, 惠东. 储能技术融合分布式可再生能源的现状及发展趋势[J]. 电工技术学报, 2016, 31(14): 1-10, 20.
LI J L, MA H M, HUI D.Present development condition and trends of energy storage technology in the integration of distributed renewable energy[J]. Transactions of China Electrotechnical Society, 2016,31(14): 1-10,20.
[2] 丁明, 胡迪, 毕锐, 等. 含高渗透率可再生能源的配电网可靠性分析[J]. 太阳能学报, 2020, 41(2): 194-202.
DING M, HU D, BI R, et al.Reliability analysis of distribution system containing high penetration renewable energy[J]. Acta energiae solaris sinica, 2020, 41(2): 194-202.
[3] 韩晓言, 丁理杰, 陈刚, 等. 梯级水光蓄互补联合发电关键技术与研究展望[J]. 电工技术学报, 2020, 35(13): 2711-2722.
HAN X Y, DING L J, CHEN G, et al.Key technologies and research prospects for cascaded hydro-photovoltaic-pumped storage hybrid power generation system[J]. Transactions of China Electrotechnical Society, 2020,35(13): 2711-2722.
[4] 茆美琴, 洪嘉玲, 张榴晨.考虑光伏出力预测误差修正的储能优化配置方法[J]. 太阳能学报, 2021,42(2): 410-416.
MAO M Q, HONG J L, ZHANG L C.Energy stoarge optimization configuration method considering conditional forecast error correction[J]. Acta energiae solaris sinica, 2021, 42(2): 410-416.
[5] ZARRILLI D, GIANNITRAPANI A, PAOLETTI S, et al.Energy storage operation for voltage control in distribution networks: areceding horizon approach[J]. IEEE transactions on control systems technology, 2018,26(2): 599-609.
[6] 孙舟, 田贺平, 王伟贤, 等. 梯次利用电池储能系统参与用户侧削峰填谷的经济性研究[J]. 太阳能学报, 2021, 42(4): 95-100.
SUN Z, TIAN H P, WANG W X, et al.Research on economy of echelon utilization battery energy storage system for user-side peak load shifting[J]. Acta energiae solaris sinica, 2021, 42(4): 95-100.
[7] LI Y, SONG J, YANG J.A review on structure model and energy system design of lithium-ion battery in renewable energy vehicle[J]. Renewable and sustainable energy reviews, 2014, 37(6): 27-33.
[8] RUFER A, BARRADE P.A supercapacitor-based energy-storage system for elevators with soft commutated interface[J]. IEEE transactions on industry applications, 2002,38(5): 1151-1159.
[9] 魏文婧, 胡海涛, 王科, 等. 基于铁路功率调节器的高速铁路牵引供电系统储能方案及控制策略[J]. 电工技术学报, 2019, 34(6): 1290-1299.
WEI W J, HU H T, WANG K, et al.Energy storage scheme and control strategies of high-speed railway based on railway power conditioner[J]. Transactions of China Electrotechnical Society, 2019, 34(6): 1290-1299.
[10] 周美兰, 冯继峰, 张宇, 等. 纯电动客车复合储能系统功率分配控制策略研究[J]. 电工技术学报, 2019,34(23): 5001-5013.
ZHOU M L, FENG J F, ZHANG Y, et al.Research on power allocation control strategy for compound electric energy storage system of pure electric bus[J]. Transactions of China Electrotechnical Society, 2019, 34(23): 5001-5013.
[11] 王湘, 吴峻. 连发型电磁弹射器混合储能系统及其能源管理策略[J]. 电工技术学报, 2020,35(19): 4076-4084.
WANG X, WU J.Hybrid energy storage system of continuous-type electromagnetic catapult and its energy management strategy[J]. Transactions of China Electrotechnical Society, 2020, 35(19): 4076-4084.
[12] 国家发展改革委. 五部门关于促进储能技术与产业发展的指导意见 [EB/OL]. http://www.gov.cn/xinwen/2017-10/11/content_5231130.htm, 2017-10-11/2020-3-10.
National Development and Reform Commission. Guiding opinions of five departments on promoting the development of energy storage technology and industry[EB/OL].http://www.gov.cn/xinwen/2017-10/11/content_5231130.htm, 2017-10-11/2020-03-10.
[13] 东方财富网. 2021年中国储能电站装机规模与发展前景分析电化学储能增速最快[R/OL]. (2021-05-07) https://baijiahao.baidu.com/s?id=1699087943728235479&wfr=spider&for=pc.
Oriental Wealth Network. In2021, the scale and development prospects of China’s energy storage power stations will grow the fastest in electrochemical energy storage 2021[R/OL]. (2021-05-07). https://baijiahao.baidu.com/s?id=1699087943728235479&wfr=spider&for=pc.
[14] 孙凯, 陈欢, 吴红飞. 面向储能系统应用的隔离型双向DC-DC变换器分析方法与控制技术综述[J]. 电工电能新技术, 2019, 38(8): 1-9.
SUN K, CHEN H, WU H F.A review of analysis method and control technology for isolated bidirectional DC-DC converter used in energy storage systems[J]. Advanced technology of electrical engineering and energy, 2019, 38(8): 1-9.
[15] 杨惠, 骆姗, 孙向东, 等. 光伏储能双向DC-DC变换器的自抗扰控制方法研究[J]. 太阳能学报, 2018, 39(5): 1342-1350.
YANG H, LUO S, SUN X D, et al.Research on ADRC method for bidirectional DC-DC converter of solar energy storage system[J]. Acta energiae solaris sinica, 2018,39(5): 1342-1350.
[16] SHAN Y, HU J, LI Z, et al.A model predictive control for renewable energy based AC microgrids without any PID regulators[J]. IEEE transactions on power electronics, 2018, 33(11): 9122-9126.
[17] SHAN Y, HU J, CHAN K W, et al.Model predictive control of bidirectional DC-DC converters and AC/DC interlinking converters—a new control method for PV-wind-battery microgrids[J]. IEEE transactions on sustainable energy, 2019, 10(4): 1823-1833.
[18] ERROUISSI R, AL-DURRA A, MUYEEN S M.A robust continuous-time MPC of a DC-DC boost converter interfaced with a grid-connected photovoltaic system[J]. IEEE journal of photovoltaics, 2016, 6(6): 1619-1629.
[19] ZUBIETA L, BONERT R.Characterization of double-layer capacitors for power electronics applications[J]. IEEE transactions on industry applications, 1997, 36(1): 199-205.
[20] 张旭辉, 温旭辉, 赵峰. 抵消恒功率负载负阻抗特性影响的双向Buck/Boost变换器控制策略[J]. 电工技术学报, 2013, 28(11): 195-201, 208.
ZHANG X H, WEN X H, ZHAO F.The control scheme counteracting negative impedance of constant power load for bi-directional Buck/Boost[J]. Transactions of China Electrotechnical Society, 2013, 28(11): 195-201, 208.
[21] SABLE D M, LEE F C, CHO B H.A zero-voltage-switching bidirectional battery charger/discharger for the NASA EOS satellite[C]//Proceedings of the Applied Power Electronics Conference and Exposition. IEEE, Boston, MA, USA, 1992: 614-621.
[22] OZATAY E, ZILE B, ANSTROM J, et al.Power distribution control coordinating ultracapacitors and batteries for electric vehicles[C]//Proceedings of the 2004 American Control Conference, IEEE, 2004, 5: 4716-4721.
[23] KIM S-K, PARK C R, KIM J-S, et al.A stabilizing model predictive controller for voltage regulation of a DC/DC boost converter[J]. IEEE transactions on control systems technology, 2014, 22(5): 2016-2023.
[24] 韩京清. 自抗扰控制技术: 估计补偿不确定因素的控制技术[M]. 北京: 国防工业出版社, 2008: 56-73.
HAN J Q.Acitve disturbance rejection control technique: the technique for estimating and compensating the uncertainties[M]. Beijing: National Defense Industry Press, 2008: 56-73.

基金

国家重点研发计划(2016YFC1401902); 上海市科委科技计划(20dz1206100)

PDF(3704 KB)

Accesses

Citation

Detail

段落导航
相关文章

/