Energy Storage Science and Technology ›› 2022, Vol. 11 ›› Issue (10): 3371-3380.doi: 10.19799/j.cnki.2095-4239.2022.0236
• Energy Storage Test: Methods and Evaluation • Previous Articles Next Articles
Qiao DENG(), Dongyuan QIU(), Wenchao GU, Yanfeng CHEN, Bo ZHANG
Received:
2022-04-29
Revised:
2022-05-26
Online:
2022-10-05
Published:
2022-10-10
Contact:
Dongyuan QIU
E-mail:202020114368@mail.scut.edu.cn;epdyqiu@scut.edu.cn
CLC Number:
Qiao DENG, Dongyuan QIU, Wenchao GU, Yanfeng CHEN, Bo ZHANG. Parameter-identification method for fractional-order models of supercapacitors based on frequency-band division[J]. Energy Storage Science and Technology, 2022, 11(10): 3371-3380.
Table 1
Impedance parameters of supercapacitor at different charge-discharge frequencies"
频段范围 | 频率取值 | 充放电频率f/Hz | 阻抗参数/Ω | |
---|---|---|---|---|
Re(ω) | Im(ω) | |||
主电容特性 频段 | ωmin | 10.0 m | 0.010 1 | 0.054 4 |
ωL | 11.1 m | 0.009 9 | 0.049 1 | |
16.7 m | 0.009 3 | 0.033 2 | ||
25.0 m | 0.008 9 | 0.022 4 | ||
33.3 m | 0.008 6 | 0.017 0 | ||
50.0 m | 0.008 4 | 0.011 6 | ||
电荷扩散频段 | ωM | 50 | 0.006 0 | 3.220 6×10-5 |
100 | 0.006 0 | 1.640 9×10-5 | ||
电阻特性频段 | ωH | 100 | 0.006 0 | 1.640 9×10-5 |
1 | HENSON W. Optimal battery/ultracapacitor storage combination[J]. Journal of Power Sources, 2008, 179(1): 417-423. |
2 | SIMON P, GOGOTSI Y. Materials for electrochemical capacitors[J]. Nature Materials, 2008, 7(11): 845-854. |
3 | KIM B K, Sy S, Yu, et al. Electrochemical supercapacitors for energy storage and conversion[M]. Canada: John Wiley& Sons, Ltd, 2014: 4. |
4 | CONWAY B. Electrochemical supercapacitors: Scientific fundamentals and technological applications[M]. New York: Plenum Press, 1999:11 |
5 | 吴倩, 王洋, 王琳媛, 等. 计及波动平抑与经济性的风光储系统中混合储能容量优化配置[J]. 电测与仪表, 2022, 59(4): 112-119. |
WU Q, WANG Y, WANG L Y, et al. Optimal capacity allocation of hybrid energy storage system in wind-solar-battery system considering fluctuation smoothing and economy[J]. Electrical Measurement & Instrumentation, 2022, 59(4): 112-119. | |
6 | 张友鹏, , 赵珊鹏. 超级电容在高速铁路再生制动能量存储中的应用及控制[J]. 储能科学与技术, 2019, 8(6): 1145-1150. |
ZHANG Y P, YANG H W, ZHAO S P. Application and control of super capacitor in high-speed railway regenerative braking energy storage[J]. Energy Storage Science and Technology, 2019, 8(6): 1145-1150. | |
7 | 李瑞民, 张新敬, 徐玉杰, 等. 风光互补系统中混合储能容量优化配置研究[J]. 储能科学与技术, 2019, 8(3): 512-522. |
LI R M, ZHANG X J, XU Y J, et al. Research on optimal configuration of hybrid energy storage capacity for wind-solar generation system[J]. Energy Storage Science and Technology, 2019, 8(3): 512-522. | |
8 | 张骞, 武小兰, 白志峰, 等. 电动汽车混合储能系统自适应能量管理策略研究[J]. 储能科学与技术, 2020, 9(3): 878-884. |
ZHANG Q, WU X L, BAI Z F, et al. Research on adaptive energy management strategy of hybrid energy storage system in electric vehicles[J]. Energy Storage Science and Technology, 2020, 9(3): 878-884. | |
9 | ZHANG L, HU X S, WANG Z P, et al. Experimental impedance investigation of an ultracapacitor at different conditions for electric vehicle applications[J]. Journal of Power Sources, 2015, 287: 129-138. |
10 | 单金生, 吴立锋, 关永, 等. 超级电容建模现状及展望[J]. 电子元件与材料, 2013, 32(8): 5-10. |
SHAN J S, WU L F, GUAN Y, et al. Review and expectation of modeling research on supercapacitor[J]. Electronic Components and Materials, 2013, 32(8): 5-10. | |
11 | SPYKER R L, NELMS R M. Classical equivalent circuit parameters for a double-layer capacitor[J]. IEEE Transactions on Aerospace and Electronic Systems, 2000, 36(3): 829-836. |
12 | ZUBIETA L, BONERT R. Characterization of double-layer capacitors for power electronics applications[J]. IEEE Transactions on Industry Applications, 2000, 36(1): 199-205. |
13 | BULLER S, KARDEN E, KOK D, et al. Modeling the dynamic behavior of supercapacitors using impedance spectroscopy[J]. IEEE Transactions on Industry Applications, 2002, 38(6): 1622-1626. |
14 | RIU D, RETIERE N, LINZEN D. Half-order modelling of supercapacitors[C]//Conference Record of the 2004 IEEE Industry Applications Conference, 2004.39th IAS Annual Meeting. Seattle, WA, USA. IEEE, : 2550-2554. |
15 | 付诗意, 吕桃林, 闵凡奇, 等. 电动汽车用锂离子电池SOC估算方法综述[J]. 储能科学与技术, 2021, 10(3): 1127-1136. |
FU S Y, LYU T L, MIN F Q, et al. Review of estimation methods on SOC of lithium-ion batteries in electric vehicles[J]. Energy Storage Science and Technology, 2021, 10(3): 1127-1136. | |
16 | WESTERLUND S, EKSTAM L. Capacitor theory[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 1994, 1(5): 826-839. |
17 | 余鹏, 王顺利, 于春梅. 基于自适应分数阶扩展卡尔曼的锂电池SOC估算[J]. 储能科学与技术, 2021, 10(1): 335-341. |
YU P, WANG S L, YU C M. SOC estimation of lithium batteries based on improved fractional-order extended Kalman[J]. Energy Storage Science and Technology, 2021, 10(1): 335-341. | |
18 | ZHANG L, HU X S, WANG Z P, et al. Fractional-order modeling and state-of-charge estimation for ultracapacitors[J]. Journal of Power Sources, 2016, 314: 28-34. |
19 | KARDEN E. Using low frequency impedance spectroscopy for characterization, monitoring, and modeling of industrial batteries[D]. Aachen: Shaker, 2002 . |
20 | 赵洋, 梁海泉, 张逸成. 电化学超级电容器建模研究现状与展望[J]. 电工技术学报, 2012, 27(3): 188-195. |
ZHAO Y, LIANG H Q, ZHANG Y C. Review and expectation of modeling research on electrochemical supercapacitor[J]. Transactions of China Electrotechnical Society, 2012, 27(3): 188-195. | |
21 | HAMMAR A, VENET P, LALLEMAND R, et al. Study of accelerated aging of supercapacitors for transport applications[J]. IEEE Transactions on Industrial Electronics, 2010, 57(12): 3972-3979. |
22 | CHRISTOPHERSEN J P. Battery test manual for electric vehicles, revision 3[R]. Office of Scientific and Technical Information (OSTI), 2015. |
23 | ZOU C F, ZHANG L, HU X S, et al. A review of fractional-order techniques applied to lithium-ion batteries, lead-acid batteries, and supercapacitors[J]. Journal of Power Sources, 2018, 390: 286-296. |
24 | DZIELIŃSKI A, SIEROCIUK D. Ultracapacitor modelling and control using discrete fractional order state-space models and Fractional Kalman Filters[J]. 2007 European Control Conference (ECC), 2007: 2916-2922. |
25 | VALSA J, Dvorak P, FRIEDL M. Network model of the CPE[J]. Radioengineering, 2011, 20(3): 619-626. |
26 | MURALIDHARAN V S. Warburg impedance - basics revisited[J]. Anti-Corrosion Methods and Materials, 1997, 44(1): 26-29. |
27 | MARTIN R, QUINTANA J J, RAMOS A, et al. Modeling electrochemical double layer capacitor, from classical to fractional impedance[J]. MELECON 2008-the 14th IEEE Mediterranean Electrotechnical Conference, 2008: 61-66. |
28 | QUINTANA J J, RAMOS A, NUEZ I. Identification of the fractional impedance of ultracapacitors[J]. IFAC Proceedings Volumes, 2006, 39(11): 432-436. |
29 | 余波, 梁锐, 蒲亦非, 等. 超级电容器恒流充电的时域分数阶电路模型[J]. 电工技术学报, 2019, 34(17): 3533-3541. |
YU B, LIANG R, PU Y F, et al. Time-domain fractional circuit model for constant current charging of supercapacitor[J]. Transactions of China Electrotechnical Society, 2019, 34(17): 3533-3541. | |
30 | 张雷. 电动车辆用超级电容建模与状态估计算法研究[D]. 北京: 北京理工大学, 2016. |
ZHANG L. Ultracapacitor modeling and sate-of-charge estimation for electric vehicles[D]. Beijing: Beijing Institute of Technology, 2016. | |
31 | ZHANG L, HU X, WANG Z, et al. Fractional-order modelling of ultracapacitors[C]. The 8th IFAC Symposium Advances in Automotive Control (IFAC-AAC), Norrkoping, Sweden, 2016. |
32 | 赵竟园. 车用超级电容建模及在混合动力汽车中的应用[D]. 长春: 吉林大学, 2018. |
ZHAO J Y. The research on supercapacitor modelling, state-of-charge estimation and control strategy for hybrid electric vehicles[D]. Changchun: Jilin University, 2018. |
[1] | Yuzuo WANG, Yinli LU, Miao DENG, Bin YANG, Xuewen YU, Ge JIN, Dianbo RUAN. Research progress of self-discharge in supercapacitors [J]. Energy Storage Science and Technology, 2022, 11(7): 2114-2125. |
[2] | Jianhua YUAN, Yaping LIU, Ziwei ZHAO, Yu LIU, Binbin XIE, Baolin HE. SOC estimation of UAV lithium battery based on IGWO-PF algorithm [J]. Energy Storage Science and Technology, 2022, 11(5): 1601-1607. |
[3] | Tiezhu GUO, Di ZHOU, Chuanfang ZHANG. Strategies for improving MXene colloidal stability and impact on their supercapacitor performance [J]. Energy Storage Science and Technology, 2022, 11(4): 1165-1174. |
[4] | Nan LIN, Ulrike KREWER, Jochen ZAUSCH, Konrad STEINER, Haibo LIN, Shouhua FENG. Development and application of multiphysics models for electrochemical energy storage and conversion systems [J]. Energy Storage Science and Technology, 2022, 11(4): 1149-1164. |
[5] | Bowen YUE, Jiahuan TONG, Yuwen LIU, Feng HUO. Simulation calculation method and application of ionic liquid electrolyte [J]. Energy Storage Science and Technology, 2022, 11(3): 897-911. |
[6] | Yongli TONG, Xiang WU. Electrochemical performance of Co3O4 electrode materials derived from Co metal-organic framework [J]. Energy Storage Science and Technology, 2022, 11(3): 1035-1043. |
[7] | Jianguang YIN, Xiangyu CUI, Fangwei LI, Yuwei ZANG, Fei PENG. Research on the parameter identification of battery performance degradation based on self-adaptive synergistic guiding [J]. Energy Storage Science and Technology, 2022, 11(10): 3345-3353. |
[8] | Yong LUO, Zhenyu ZHOU, Futao SHEN, Huan HUANG, Xiaobin QIU, yongyong WENG. Electrothermal coupling modeling of battery pack considering time-varying parameters [J]. Energy Storage Science and Technology, 2022, 11(10): 3180-3190. |
[9] | Xue HAN, Wei DENG, Xufeng ZHOU, Zhaopin LIU. Patenting activity of graphene for energy storage [J]. Energy Storage Science and Technology, 2022, 11(1): 335-349. |
[10] | Liangbo QIAO, Xiaohu ZHANG, Xianzhong SUN, Xiong ZHANG, Yanwei MA. Advances in battery-supercapacitor hybrid energy storage system [J]. Energy Storage Science and Technology, 2022, 11(1): 98-106. |
[11] | Yuyang LIU, Shunli WANG, Yanxin XIE, Weikang JI, Yixing ZHANG. Research on Li-ion battery modeling and SOC estimation based on online parameter identification and improved 2RC-PNGV model [J]. Energy Storage Science and Technology, 2021, 10(6): 2312-2317. |
[12] | Xiaoli ZHANG, Yuetong WANG, Jinsong XIA, Yingying ZHANG. Estimation of the SOC of lithium batteries based on an improved CDKF algorithm [J]. Energy Storage Science and Technology, 2021, 10(4): 1454-1462. |
[13] | Xiliang WANG, Wenfeng CUI, Kefeng TONG, Xuelong CHEN, Zhijun QIAO, Dianbo RUAN. Design and simulation of an integrated three-port converter for supercapacitor energy storage [J]. Energy Storage Science and Technology, 2021, 10(3): 1095-1102. |
[14] | Lei ZHU, Zibo LIU, Lulu LI, Tinglong PAN, Weilin YANG. Research on a battery SOC prediction method based on the RLS-DLUKF algorithm [J]. Energy Storage Science and Technology, 2021, 10(3): 1137-1144. |
[15] | Kai WANG, Zhaoxia HOU, Siyao LI, Chenying QU, Yue WANG, Youjian KONG. Research progress of stretchable all-solid supercapacitors [J]. Energy Storage Science and Technology, 2021, 10(3): 887-895. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||