Online SOC Estimation of Supercapacitor Energy Storage System Based on Fractional-Order Model

被引:23
作者
Deng, Qiao [1 ]
Qiu, Dongyuan [1 ]
Xie, Zhaowei [1 ]
Zhang, Bo [1 ]
Chen, Yanfeng [1 ]
机构
[1] South China Univ Technol, Sch Elect Power, Guangzhou 510640, Peoples R China
基金
中国国家自然科学基金;
关键词
Fractional-order model; online estimation; state of charge (SOC); supercapacitor; STATE; PARAMETERS;
D O I
10.1109/TIM.2023.3280524
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
Fast and accurate estimation of the state of charge (SOC) of supercapacitors is essential for the safe and reliable operation of energy storage systems. However, existing SOC estimation methods are based on the integer-order model of supercapacitors and do not take into account the fractional-order characteristics of supercapacitors. Hence, the accuracy of SOC estimation results usually ignores the impact of modeling and relies on the correction effect of the algorithm. In this article, a supercapacitor energy storage system is first established for fractional-order modeling and fractional-order SOC estimation of supercapacitors. Next, a Kalman filter is devised to track the SOC of supercapacitors in real time, and it can correct the estimation results online. Finally, experiments under different working conditions are conducted to demonstrate the effectiveness of the proposed fractional-order modeling and SOC estimation scheme. Compared with the data obtained by the traditional integer-order method, the accuracy of the proposed fractional-order method is higher, and the mean relative errors are less than 5%. With the online correction of the Kalman filter, the maximum errors under different working conditions are limited to 1.3%.
引用
收藏
页数:10
相关论文
共 36 条
[11]   Distributed Control for State-of-Energy Balancing of Supercapacitor Modules in Light Rail Vehicles [J].
Lyu, Chengzhang ;
Huang, Zhiwu ;
Li, Heng ;
Liao, Hongtao ;
Yang, Yingze ;
Peng, Jun ;
Wang, Jing .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2019, 68 (05) :4447-4457
[12]   Fractional model of the electrochemical capacitor relaxation phenomenon [J].
Martynyuk, V. ;
Ortigueira, M. ;
Fedula, M. ;
Savenko, O. .
BULLETIN OF THE POLISH ACADEMY OF SCIENCES-TECHNICAL SCIENCES, 2018, 66 (04) :441-448
[13]  
Nadeau A, 2014, INT CONF ACOUST SPEE
[14]   Online Parameter Estimation for Supercapacitor State-of-Energy and State-of-Health Determination in Vehicular Applications [J].
Naseri, Farshid ;
Farjah, Ebrahim ;
Ghanbari, Teymoor ;
Kazemi, Zahra ;
Schaltz, Erik ;
Schanen, Jean-Luc .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2020, 67 (09) :7963-7972
[15]   Mitigating Power Fluctuations for Energy Storage in Wind Energy Conversion System Using Supercapacitors [J].
Panhwar, Irfan Hussain ;
Ahmed, Kafeel ;
Seyedmahmoudian, Mehdi ;
Stojcevski, Alex ;
Horan, Ben ;
Mekhilef, Saad ;
Aslam, Asim ;
Asghar, Maryam .
IEEE ACCESS, 2020, 8 :189747-189760
[16]  
Petras I., 2012, 2012 13th International Carpathian Control Conference (ICCC 2012), P552, DOI 10.1109/CarpathianCC.2012.6228706
[17]   Optimal Charging Profile Design for Attaining Desired State of Charge in Symmetric Electrochemical Capacitor With Efficiency Analysis [J].
Rao, K. Dhananjay ;
Ghosh, Subhojit ;
Kumar, Mano Ranjan .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2021, 57 (05) :5264-5273
[18]   Transient Behavior Modeling-Based Hysteresis-Dependent Energy Estimation of Ultracapacitor [J].
Rao, K. Dhananjay ;
Ghosh, Subhojit ;
Das, Shantanu ;
Kumar, Mano Ranjan .
IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2020, 69 (09) :6455-6464
[19]  
Riu D, 2004, IEEE IND APPLIC SOC, P2550
[20]  
Saha P., 2020, P IEEE INT S CIRC SY, P1