Abstract:The 6.78 MHz wireless power transfer (WPT) system is an attractive solution for consumer electronics, offering excellent spatial freedom, lightweight coils, and high power density. However, the full-bridge converters in MHz scenarios suffer from high switching losses, reverse conduction losses, and challenges in synchronous phase control. This paper proposes a bilateral adaptive dead-time control strategy that adaptively adjusts dead time and driving phase angle across the entire load range, ensuring continuous operation under critical zero-voltage switching (ZVS) conditions. Firstly, a frequency-domain analysis model is established based on the equivalent circuit. The fundamental and higher harmonic components of the resonant current are determined. Considering the trade-off between computational complexity and accuracy, harmonic components of the 9th order and above are reasonably neglected. Secondly, the critical ZVS conditions for the inverter and rectifier are derived from time-domain analysis. Both the inverter and rectifier need to reduce the hard-switching and reverse-conduction losses in GaN devices during critical ZVS operation. When the charge provided by the current (Qzvs) exceeds the charge required by the device (Qoss), the converter operates in the post-ZVS condition, leading to significant reverse-conduction losses due to the high reverse-conduction voltage of GaN devices. When Qzvs is less than Qoss, the converter operates in partial ZVS, resulting in hard-switching losses due to turn-on ringing. When Qzvs equals Qoss, the converter operates in critical ZVS mode, eliminating both hard-switching ringing and reverse-conduction losses. By integrating the higher-harmonic components calculated from numerical solutions for the critical ZVS operation, the converter operation is derived. Then, a bilateral adaptive dead-time control strategy is proposed. The converter continuously monitors the reverse conduction signal and the zero-crossing point of the secondary resonant current. Through phase angle and dead-time control, the system adaptively achieves critical ZVS operation for the bilateral converters under varying load conditions. Specifically, the primary side employs a reverse-conduction detection (RCD) circuit to monitor the drain-source voltage of the lower switch in the inverter, thereby determining the ZVS current status. The resonant current zero-crossing point is detected and processed by a digital PI controller to achieve precise regulation of the driving phase angle on the secondary side. It is integrated with the RCD circuit signal to adjust the dead time and the reference value of phase angle, enabling critical ZVS operation across the entire load range to optimize efficiency. Finally, two 40 W prototypes, one based on GaN rectifiers and the other on passive rectifiers, are constructed to validate the proposed approach. Experimental results demonstrate that the system maintains high efficiency across varying loads, with a peak overall efficiency of 86.82% at 40.2 W output using GaN-based rectifiers. An improvement of 2.65% at rated load (RL=20 Ω) and 5.49% under light load (RL=50 Ω) conditions is achieved compared to the system with passive rectifiers. The constant voltage output characteristic of the system with the proposed method under varying load conditions has been effectively validated. Moreover, a detailed comparison with existing methods is presented in a table. This research provides a solution for future WPT system requirements.
赵晨旭, 肖国春, 高泽图, Mohamad Abou Houran, 王来利. 基于LCC-S型网络的6.78 MHz无线电能传输系统临界零电压开通控制方法[J]. 电工技术学报, 2026, 41(18): 6110-6122.
Zhao Chenxu, Xiao Guochun, Gao Zetu, Mohamad Abou Houran, Wang Laili. Critical Zero Voltage Switching Control Method for a 6.78 MHz Wireless Power Transfer System Based on LCC-S Networks. Transactions of China Electrotechnical Society, 2026, 41(18): 6110-6122.
[1] Wang Xiaosheng, Jiang C Q, Zhou Jiayu, et al.Hybrid control based on pulse density modulation and asymmetrical voltage cancellation for WPT systems[J]. IEEE Transactions on Industrial Electronics, 2024, 72(3): 2487-2497. [2] Wu Min, Yang Xu, Chen Wenjie, et al.A compact coupler with integrated multiple decoupled coils for wireless power transfer system and its anti- misalignment control[J]. IEEE Transactions on Power Electronics, 2022, 37(10): 12814-12827. [3] 闫争超, 胡谦宇, 赵晨旭, 等. 水下航行器感应式无线电能传输技术研究综述[J]. 中国电机工程学报, 2023, 43(24): 9668-9682. Yan Zhengchao, Hu Qianyu, Zhao Chenxu, et al.Review on inductive wireless power transfer tech- nology for underwater vehicles[J]. Proceedings of the CSEE, 2023, 43(24): 9668-9682. [4] 李小飞, 蒋光利, 李志恒, 等. 基于互感与负载识别的AGV无线电能传输系统闭环恒流与效率优化控制方法[J]. 电工技术学报, 2025, 40(14): 4418-4430. Li Xiaofei, Jiang Guangli, Li Zhiheng, et al.A closed-loop constant current and efficiency optimi- zation control method for AGV wireless power transfer system based on mutual inductance and load identification[J]. Transactions of China Electro- technical Society, 2025, 40(14): 4418-4430. [5] 陈伟华, 刘宗旺, 李政兴, 等. 谐振式无线供能心脏起搏器多线圈无功屏蔽研究[J]. 电工技术学报 2022, 37(11): 2673-2685. Chen Weihua, Liu Zongwang, Li Zhengxing, et al.Research on multi coil reactive shielding of resonant wireless energy supply cardiac pacemaker[J]. Transa- ctions of China Electrotechnical Society, 2022, 37(11): 2673-2685. [6] 陈伟华, 宋宇航, 闫孝姮, 等. 心脏起搏器无线电能传输LCC-LCC磁集成印刷螺旋线圈研究[J]. 电工技术学报, 2024, 39(17): 5289-5299. Chen Weihua, Song Yuhang, Yan Xiaoheng, et al.Research on wireless power transmission for cardiac pacemakers using LCC-LCC magnetic integrated printed spiral coil[J]. Transactions of China Elec- trotechnical Society, 2024, 39(17): 5289-5299. [7] Wang Yijie, Sun Zhan, Guan Yueshi, et al.Overview of megahertz wireless power transfer[J]. Proceedings of the IEEE, 2023, 111(5): 528-554. [8] Yu Xipei, Feng Junjie, Zhu Liyan, et al.Design and optimization of a planar omnidirectional wireless power transfer system for consumer electronics[J]. IEEE Open Journal of Power Electronics, 2024, 5: 311-322. [9] 郭栋. E类无线电能传输功效优化的拓扑及调控方法[D]. 厦门: 厦门大学, 2022. Guo Dong.Power and efficiency optimization topo- logies and control methods for class-E wireless power transfer systems[D]. Xiamen: Xiamen University, 2022. [10] 毛玲, 左孝磊, 尹伊凡, 等. 基于E类逆变器的机器人直流电机无线供电系统软开关[J]. 电工技术学 报, 2025, 40(14): 4406-4417. 11 Mao Ling, Zuo Xiaolei, Yin Yifan, et al.Soft switching of wireless power supply system for robot DC motor based on E-Class inverter[J]. Transactions of China Electrotechnical Society, 2025, 40(14): 4406-4417. [11] Jiang Yongbin, Wang Laili, Fang Jingyang, et al.A joint control with variable ZVS angles for dynamic efficiency optimization in wireless power transfer system[J]. IEEE Transactions on Power Electronics, 2020, 35(10): 11064-11081. [12] Yan Zhengchao, Wu Min, Zhao Chenxu, et al.Free-rotation wireless power transfer system based on composite anti-misalignment method for AUVs[J]. IEEE Transactions on Power Electronics, 2023, 38(4): 4262-4266. [13] Wang Wenbo, Deng Junjun, Chen Deliang, et al.A novel design method of LCC-S compensated indu- ctive power transfer system combining constant current and constant voltage mode via frequency switching[J]. IEEE Access, 2021, 9: 117244-117256. [14] Yan Zhengchao, Zhang Yiming, Zhang Kehan, et al.Fault-tolerant wireless power transfer system with a dual-coupled LCC-S topology[J]. IEEE Transactions on Vehicular Technology, 2019, 68(12): 11838-11846. [15] Zhu Lei, Wang Laili, Zhao Chenxu, et al.Design and optimization of unequal-pitch self-resonant helical coils for high-efficiency mid-range wireless power transfer[J]. IEEE Transactions on Power Electronics, 2024, 39(11): 15281-15294. [16] Zhu Lei, Wang Laili, Zhao Chenxu, et al. High-speed body-diode conduction detection circuit for 6.78 MHz WPT systems with adaptive synchronous rectification control[J]. IEEE Journal of Emerging and Selected Topics in Power Electronics, 2025, PP(99): 1. [17] 贾亚辉, 王智慧, 肖静, 等. 磁耦合无线电能传输系统宽范围零电压开关实现方法[J]. 电工技术学报, 2024, 39(22): 6952-6964. Jia Yahui, Wang Zhihui, Xiao Jing, et al.Imple- mentation method of wide range zero voltage switching in magnetic coupling wireless power transfer system[J]. Transactions of China Electro- technical Society, 2024, 39(22): 6952-6964. [18] 谭平安, 周睿洋, 徐西宁, 等. 高阶补偿无线电能传输系统的通用调谐解耦控制策略[J]. 电工技术学报, 2025, 40(10): 3071-3081. Tan Ping’an, Zhou Ruiyang, Xu Xining, et al.Unified tuning decoupling control strategy for high-order compensated wireless power transfer system[J]. Transactions of China Electrotechnical Society, 2025, 40(10): 3071-3081. [19] Wang Xiaosheng, Jiang C Q, Zhou Jiayu, et al.Syn- chronization method for wireless power transfer system by detecting voltage transient on a sensor inductor[J]. IEEE Transactions on Industrial Elec- tronics, 2025, 72(6): 5771-5781. [20] 李争, 于治昊, 高世豪, 等. 基于有源整流的无线电能传输系统双边LCL零电压软开关控制策略[J]. 电工技术学报, 2025, 40(8): 2380-2392. Li Zheng, Yu Zhihao, Gao Shihao, et al.Two-sided LCL zero voltage switching control strategy based on active rectifier for wireless power transfer system[J]. Transactions of China Electrotechnical Society, 2025, 40(8): 2380-2392. [21] Qi Zhiyuan, Pei Yunqing, Wang Laili, et al.A high- bandwidth and easy-to-integrate parasitics-based switching current measurement method for fast GaN devices[J]. IEEE Transactions on Power Electronics, 2023, 38(1): 447-459. [22] Wang Xinlin, Yao Siyi, Kou Xufeng, et al.Syn- chronous bridge rectifier for MHz resonant converter based on digital control[J]. IEEE Transactions on Power Electronics, 2025, 40(11): 16587-16595. [23] Sun Zhan, Wang Yijie, Li Ming, et al.Analysis and design of 6.78MHz WPT architecture for configurable power applications based on DCX energy synthesis and functional execution[J]. IEEE Transactions on Power Electronics, 2023, 39(1): 106-111. [24] Huang Xiaosheng, Dou Yi, Lin Shuyi, et al.Syn- chronous push-pull Class E rectifiers with load- independent operation for megahertz wireless power transfer[J]. IEEE Transactions on Power Electronics, 2021, 36(6): 6351-6363. [25] 杨奕, 张葛, 曹桂梅, 等. 基于多线圈阵列的单管无线电能传输电路优化[J]. 电工技术学报, 2023, 38(20): 5398-5410. Yang Yi, Zhang Ge, Cao Guimei, et al.Optimization on single-switch wireless power transfer circuit based on multi-coils array[J]. Transactions of China Elec- trotechnical Society, 2023, 38(20): 5398-5410. [26] 黄文聪, 饶天彪, 蒋煊焱, 等. 无线电能传输系统最大效率追踪及恒压输出复合控制方法[J]. 电工技术学报, 2024, 39(12): 3589-3601, 3615. Huang Wencong, Rao Tianbiao, Jiang Xuanyan, et al.Maximum efficiency tracking and constant voltage output compound control method for wireless power transfer system[J]. Transactions of China Electro- technical Society, 2024, 39(12): 3589-3601, 3615. [27] Zhao Chenxu, Xiao Guochun, Wu Min, et al.An adaptive synchronous driving phase control method of GaN-based full-bridge 6.78-MHz WPTS[J]. IEEE Transactions on Power Electronics, 2024, 39(3): 3787-3796. [28] 李中启, 张晨曦, 王建斌, 等. 基于变频重构S/SP拓扑的无线电能传输系统恒流恒压研究[J]. 电工技术学报, 2024, 39(15): 4718-4732. Li Zhongqi, Zhang Chenxi, Wang Jianbin, et al.Research on constant current and constant voltage of WPT system based on variable frequency reconfi- guration S/SP topology[J]. Transactions of China Electrotechnical Society, 2024, 39(15): 4718-4732. [29] Zhao Chenxu, Xiao Guochun, Zhu Lei, et al.A multicriteria constrained tuning method with critical ZVS operation for 6.78 MHz WPTS[J]. IEEE Transa- ctions on Industrial Electronics, 2025, 72(10): 10007-10015. [30] 管乐诗, 程怡, 施震宇, 等. 一种10 MHz高频DC- DC功率变换器及其同步整流技术[J]. 电工技术学报, 2023, 38(18): 5029-5038. Guan Yueshi, Cheng Yi, Shi Zhenyu, et al.A 10 MHz high frequency DC-DC power converter and its synchronous rectification technology[J]. Transactions of China Electrotechnical Society, 2023, 38(18): 5029-5038. [31] Kim M, Choi J.Self-synchronized Class E resonant rectifier by compensating propagation delay for multi-MHz switching applications[J]. IEEE Transa- ctions on Power Electronics, 2022, 37(11): 13946-13954. [32] Cochran S, Costinett D.Frequency synchronization and control for a 6.78 MHz WPT active rectifier[C]// 2018 IEEE 19th Workshop on Control and Modeling for Power Electronics (COMPEL), Padua, Italy, 2018: 1-7. [33] Lim G C, Noh G, Ha J I.Analysis and control of synchronous rectification for MHz class-E resonant rectifier with load variation[C]//2021 IEEE Energy Conversion Congress and Exposition (ECCE), Vancouver, BC, Canada, 2021: 3275-3281. [34] Aldhaher S, Yates D C, Mitcheson P D.13.56MHz 50W load-independent synchronous Class E rectifier using GaN devices for space-constrained appli- cations[C]//2018 IEEE Wireless Power Transfer Con- ference (WPTC), Montreal, QC, Canada, 2018: 1-4. [35] Tebianian H, Salami Y, Jeyasurya B, et al.A 13.56-MHz full-bridge Class-D ZVS inverter with dynamic dead-time control for wireless power transfer systems[J]. IEEE Transactions on Industrial Elec- tronics, 2020, 67(2): 1487-1497.