混合型储能系统的高效无线电能传输一次侧控制设计Primary-side control design for high-efficiency wireless power transfer system in hybrid energy storage system
吴峻,谢洪平,孔军,韩超,孙科,刘志伟,王有康,李苏港,张仕清,杨超然
摘要(Abstract):
提出了一种高效可行的一次侧控制方法,用于混合型储能(hybrid energy storage system,HESS)与无线电能传输(wireless power transfer,WPT)系统,该方法能够使系统在混合储能单元不同充电状态下动态维持最大功率传输以及E类功率放大器(class E power amplifier,Eop)的开关管处于软开关工作状态,确保混合型储能稳定高效地进行无线能量补充。系统拓扑由Eop、串联-串联(S-S)型WPT电路和HESS构成,基于对HESS不同充电模式下无线电能传输特性及Eop软开关特性的分析,提出了针对HESS无线充电的Eop最优频率追踪控制及Eop软开关占空比控制策略。该控制策略的优势是所有控制机构均位于发射侧,这样可有效减少接收侧储能单元的附加电路体积,提升系统的体积能量密度。最后,基于ZYNQ处理器搭建了实验样机,实验结果表明,该系统能够在混合储能不同充电状态及耦合条件下实现高效稳定的无线电能传输。
关键词(KeyWords): 混合储能系统;无线电能传输;负载扰动;线圈耦合系数
基金项目(Foundation): 国网江苏省电力工程咨询有限公司科技项目(J202309)~~
作者(Author): 吴峻,谢洪平,孔军,韩超,孙科,刘志伟,王有康,李苏港,张仕清,杨超然
DOI: 10.19666/j.rlfd.202508047
参考文献(References):
- [1]杨庆新,张献,李阳,等.无线电能传输技术及其应用[M].北京:机械工业出版社, 2014:190.YANG Qingxin, ZHANG Xian, LI Yang, et al. Wireless power transmission technology and its applications[M].Beijing:China Machine Press, 2014:190.
- [2]RAABE S, ELLIOTT G A J, COVIC G A, et al. A quadrature pickup for inductive power transfer systems[C]//Proceedings of the 2007 2nd IEEE Conference on Industrial Electronics and Applications,23-25 May, 2007:15.
- [3]乐琦.植入式医疗设备无线电能传输系统的研究[D].杭州:浙江科技大学, 2020:1.LE Qi. Research on wireless power transmission systems for implantable medical devices[D]. Hanzhou:Zhejiang University of Science and Technology, 2020:1.
- [4]王林,黄智慧,邹积岩.用于高压无线供电设备的线圈研究[J].电力电子技术, 2017, 51(11):72-74.WANG Lin, HUANG Zhihui, ZOU Jiyan. The research on coil of wireless power supply equipment in high voltage[J]. Power Electronics Technology, 2017, 51(11):72-74.
- [5]李登帅.具有无线电能传输能力的绝缘子特性研究[D].成都:西华大学, 2020:1.LI Dengshuai. Study on the characteristics of insulators with wireless power transfer capabilities[D]. Chengdu:Xihua University, 2020:1.
- [6]张纯江,董杰,刘君,等.蓄电池与超级电容混合储能系统的控制策略[J].电工技术学报, 2014, 29(4):334-340.ZHANG Chunjiang, DONG Jie, LIU Jun, et al. A control stratrgy for battery-ultracapacitor hybrid energy storage system[J]. Transactions of China Electrotechnical Society,2014, 29(4):334-340.
- [7]诸斐琴,杨中平,林飞,等.基于加速时间预测的现代有轨电车储能系统能量管理与容量配置优化研究[J].电工技术学报, 2017, 32(23):158-166.ZHU Feiqin, YANG Zhongping, LIN Fei, et al. Research on acceleration-time-prediction-based energy management and optimal sizing of onboard energy storage system for modern trams[J]. Transactions of China Electrotechnical Society, 2017, 32(23):158-166.
- [8]HERRERA V I, GAZTA??AGA H, MILO A, et al. Optimal energy management and sizing of a batterysupercapacitor-based light rail vehicle with a multiobjective approach[J]. IEEE Transactions on Industry Applications, 2016, 52(4):3367-3377.
- [9]LEE S H, LORENZ R D. Development and validation of model for 95%-efficiency 220 W wireless power transfer over a 30 cm air gap[J]. IEEE Transactions on Industry Applications, 2011, 47(6):2495-2504.
- [10]程丽敏,崔玉龙,闫贯博.磁耦合谐振式无线电能传输频率跟踪控制研究[J].电力电子技术, 2014, 48(11):3-6.CHENG Limin, CUI Yulong, YAN Guanbo. Research on frequency tracking control of wireless power transfer via magnetic resonance coupling[J]. Power Electronics Technology, 2014, 48(11):3-6.
- [11]熊栩巍,王苗,徐松,等.超级电容无线充电系统研究与设计[J].电力电子技术, 2024, 58(7):17-22.XIONG Xuwei, WANG Miao, XU Song, et al. Research and design of supercapacitor wireless charging system[J].Power Electronics Technology, 2024, 58(7):17-22.
- [12]LI Q, YI D, DANG G, et al. Electrochemical impedance spectrum(EIS)variation of lithium-ion batteries due to resting times in the charging processes[J]. World Electric Vehicle Journal, 2023, 14(12):321.
- [13]FAN C, TIAN X, GU C. Perturbation-based battery impedance characterization methods:from the laboratory to practical implementation[J]. Batteries, 2024, 10(12):414.
- [14]MAI J, WANG Y, ZENG X, et al. A multi-segment compensation method for improving power density of long-distance IPT system[J]. IEEE Transactions on Industrial Electronics, 2022, 69(12):12795-806.
- [15]周海东.基于改进型E类功放的无线电能传输系统的设计与实现[D].广州:广东工业大学, 2019:1.ZHOU Haidong. Design and implementation of wireless power transfer system based on improved class E power amplifier[D]. Guangzhou:Guangdong University of Technology, 2019:1.
- [16]翁婉莹,章意,吴建德,等.用于无线电能传输的E类功放阻抗匹配方法[J].电力电子技术, 2022, 56(11):45-48.WENG Wanying, ZHANG Yi, WU Jiande, et al. Class E power amplifier impedance matching method for wireless power transfer[J]. Power Electronics Technology, 2022,56(11):45-48.
- [17]YANG C, ZHANG L, XIU S. An analysis of wireless power transfer with a hybrid energy storage system and its sustainable optimization[J]. Sustainability, 2025, 17(6):2358-2358.
- [18]李均锋,廖承林,王丽芳.基于E类放大器的中距离无线能量传输系统[J].电工技术学报, 2014, 29(9):7-11.LI Junfeng, LIAO Chenglin, WANG Lifang. Middistance wireless power transfer system using E-class amplifier[J]. Transactions of the CSE Electrotechnical Journal, 2014, 29(9):7-11.
- [19]张波.无线电能传输原理[M].北京:科学出版社,2018:173.ZHANG Bo. Principle of wireless power transmission[M].Beijing:Science Press, 2018:173.