Underwater Simultaneous Wireless Power and Information Transfer System with Coplanar Double-Coil Coupler
Deng Renwei1, Su Yugang1,2, Hu Hongsheng1,2, Yang Xuefeng1, Fei Yingjun1
1. School of Automation Chongqing University Chongqing 400043 China; 2. China National Center for International Research on Wireless Power Transfer Technology Chongqing 400043 China
Abstract:In underwater applications, such as underwater robots, autonomous underwater vehicles (AUVs), and remotely operated vehicles (ROVs), magnetic-field coupled wireless power transfer (MC-WPT) enables the transmission of electrical energy without electric contact, improving the flexibility and security of power transfer. Underwater electrical devices and base stations must achieve long-distance and high-power wireless power transfer while realizing high-speed bidirectional wireless information exchange to enable command transmission, data feedback, and closed-loop control. Many scholars have researched shared-channel magnetic-field coupled underwater simultaneous wireless power and information transfer (MC-USWPIT) technology. However, there is still a gap between the transmission distance, power transfer capacity, information transfer speed, and the requirements of engineering applications. Therefore, this paper proposes an underwater simultaneous wireless power and information transfer system with a coplanar double-coil coupler. The research focuses on rapid wireless power replenishment and high-speed bidirectional information transmission for AUVs in seawater. The goal is to achieve high-power energy transfer and high-speed bidirectional information transmission over long transmission distances. The coupler with a coplanar double-coil and the MC-USWPIT system topology are proposed. Using the relay coil for information transmission reduces the voltage stress on the information transmission circuit and helps mitigate the crosstalk between the power and information transfer channels. By employing an injecting information method with a series of LC circuits in the information transmission channel, the LC circuit is fully compensated at the power transmission frequency. Furthermore, smaller capacitance-blocking capacitors further reduce the crosstalk between the power transmission channel and the information transmission channel, as well as the voltage stress on the information transmission channel, thereby reducing the difficulty of system design. Subsequently, the system is analyzed and modeled, and equivalent circuit models for the power and information transfer channels are provided. A parameter design method for the MC-USWPIT system is proposed. The method reduces the eddy current losses induced by the seawater and minimizes the impact of high-power energy transmission on the information transfer speed. It enables the simultaneous improvement of transmission distance, power transfer capacity, and information transfer speed in a frequency-division multiplexed MC-USWPIT system. Finally, a 5 kW experimental setup in simulated seawater is constructed. In an environment with a seawater conductivity of 4.15 S/m, the system achieved a transmission distance of 50 cm, an output power of 5.33 kW, and an information transfer speed of 5.68 Mbit/s. Furthermore, under varying seawater conductivities (4, 5, and 6 S/m) and transmission distances (30, 40, and 50 cm), the system still demonstrates good power transfer performance and high information transfer speed. The experimental results confirm that the proposed MC-USWPIT system and method can effectively improve the transmission distance, power transfer capability, and bidirectional information transfer speed in simulated seawater.
邓仁为, 苏玉刚, 胡宏晟, 杨雪峰, 费迎军. 基于共面中继线圈的水下无线电能与信息并行传输系统[J]. 电工技术学报, 2025, 40(12): 3759-3769.
Deng Renwei, Su Yugang, Hu Hongsheng, Yang Xuefeng, Fei Yingjun. Underwater Simultaneous Wireless Power and Information Transfer System with Coplanar Double-Coil Coupler. Transactions of China Electrotechnical Society, 2025, 40(12): 3759-3769.
[1] 文海兵, 宋保维, 张克涵, 等. 水下磁耦合谐振无线电能传输技术及应用研究综述[J]. 水下无人系统学报, 2019, 27(4): 361-368. Wen Haibing, Song Baowei, Zhang Kehan, et al.Underwater magnetically-coupled resonant wireless power transfer technology and its applications: a review[J]. Journal of Unmanned Undersea Systems, 2019, 27(4): 361-368. [2] 吴旭升, 孙盼, 杨深钦, 等. 水下无线电能传输技术及应用研究综述[J]. 电工技术学报, 2019, 34(8): 1559-1568. Wu Xusheng, Sun Pan, Yang Shenqin, et al.Review on underwater wireless power transfer technology and its application[J]. Transactions of China Electro-technical Society, 2019, 34(8): 1559-1568. [3] Painter H, Flynn J.Current and future wet-mate connector technology developments for scientific seabed observatory applications[C]//OCEANS 2006, Boston, MA, USA, 2006: 1-6. [4] 丰利军, 朱春波, 张剑韬, 等. 水下无人航行器水下无线充电关键技术研究[J]. 舰船科学技术, 2020, 42(23): 159-162. Feng Lijun, Zhu Chunbo, Zhang Jiantao, et al.Research on key technology based on wireless charging technology for unmanned underwater vehicle[J]. Ship Science and Technology, 2020, 42(23): 159-162. [5] 薛明, 杨庆新, 章鹏程, 等. 无线电能传输技术应用研究现状与关键问题[J]. 电工技术学报, 2021, 36(8): 1547-1568. Xue Ming, Yang Qingxin, Zhang Pengcheng, et al.Application status and key issues of wireless power transmission technology[J]. Transactions of China Electrotechnical Society, 2021, 36(8): 1547-1568. [6] 刘哲, 苏玉刚, 邓仁为, 等. 基于双边LC补偿的单电容耦合无线电能传输系统[J]. 电工技术学报, 2022, 37(17): 4306-4314. Liu Zhe, Su Yugang, Deng Renwei, et al.Research on single capacitive coupled wireless power transfer system with double-side LC compensation[J]. Transac-tions of China Electrotechnical Society, 2022, 37(17): 4306-4314. [7] 苏玉刚, 钱林俊, 刘哲, 等. 水下具有旋转耦合机构的电场耦合无线电能传输系统及参数优化方法[J]. 电工技术学报, 2022, 37(10): 2399-2410. Su Yugang, Qian Linjun, Liu Zhe, et al.Underwater electric-filed coupled wireless power transfer system with rotary coupler and parameter optimization method[J]. Transactions of China Electrotechnical Society, 2022, 37(10): 2399-2410. [8] 周玮, 郑宇锋, 陈泽林, 等. 基于副边解耦极板的电容式无线电能传输系统拾取端失谐评估[J]. 电力系统自动化, 2024, 48(3): 142-149. Zhou Wei, Zheng Yufeng, Chen Zelin, et al.Detuning estimation of pickup loop in capacitive wireless power transfer system based on secondary-side decoupled capacitive coupler[J]. Automation of Electric Power Systems, 2024, 48(3): 142-149. [9] 冯天旭, 史可, 孙跃, 等. 基于互感识别及移相角优化的全方位无线电能传输系统靶向传能方法[J]. 电工技术学报, 2023, 38(24): 6581-6595. Feng Tianxu, Shi Ke, Sun Yue, et al.Targeted power transfer method for omnidirectional wireless power transfer system based on mutual inductance identi-fication and phase-shift angle optimization[J]. Transactions of China Electrotechnical Society, 2023, 38(24): 6581-6595. [10] 苏玉刚, 刘家鸣, 王智慧, 等. 磁耦合机构拾取线圈平面金属的影响及其抑制方法[J]. 电工技术学报, 2022, 37(3): 578-588. Su Yugang, Liu Jiaming, Wang Zhihui, et al.Influence analysis of metal in the same plane with pickup coil on magnetic coupler and suppression method[J]. Transactions of China Electrotechnical Society, 2022, 37(3): 578-588. [11] 谢诗云, 杨奕, 李恋, 等. 基于双极性耦合磁场调控的高抗偏移偏转无线电能传输系统[J]. 电工技术学报, 2023, 38(18): 4838-4852. Xie Shiyun, Yang Yi, Li Lian, et al.Wireless power transfer system with high misalignment tolerance based on bipolar coupling magnetic-field control[J]. Transactions of China Electrotechnical Society, 2023, 38(18): 4838-4852. [12] 贾亚辉, 陈丰伟, 王智慧, 等. 考虑线圈参数变化的失谐型无线电能传输系统抗偏移方法[J/OL]. 电工技术学报, 2024, https://doi.org/10.19595/j.cnki.1000-6753.tces.240847. Jia Yahui, Chen Fengwei, Wang Zhihui, et al. Anti-misalignment method of detuned wireless power transfer system considering coil parameters vari-ations[J/OL]. Transactions of China Electrotechnical Society, 2024, https://doi.org/10.19595/j.cnki.1000-6753.tces.240847. [13] 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 technology for underwater vehicles[J]. Proceedings of the CSEE, 2022, 43(24): 9668-9682. [14] Yao Yousu, Sun Pengfei, Liu Xiaosheng, et al.Simultaneous wireless power and data transfer: a comprehensive review[J]. IEEE Transactions on Power Electronics, 2022, 37(3): 3650-3667. [15] 李建国, 张波, 荣超. 近场磁耦合无线电能与信息同步传输技术的发展(上篇): 数字调制[J]. 电工技术学报, 2022, 37(14): 3487-3501. Li Jianguo, Zhang Bo, Rong Chao.An overview of simultaneous wireless power and information transfer via near-field magnetic links (part Ⅰ): digital modu-lation[J]. Transactions of China Electrotechnical Society, 2022, 37(14): 3487-3501. [16] Chen Guodong, Sun Yue, Huang Junxin, et al.Wireless power and data transmission system of submarine cable-inspecting robot fish and its time-sharing multiplexing method[J]. Electronics, 2019, 8(8): 838. [17] Wang Yijie, Li Tao, Zeng Ming, et al.An underwater simultaneous wireless power and data transfer system for AUV with high-rate full-duplex communication[J]. IEEE Transactions on Power Electronics, 2023, 38(1): 619-633. [18] Li Tao, Sun Zhichao, Wang Yijie, et al.An under-water simultaneous wireless power and data transfer system with 1-Mbps full-duplex communication link[J]. IEEE Transactions on Industrial Informatics, 2024, 20(2): 2620-2631. [19] Zeng Yingqin, Lu Conghui, Liu Renzhe, et al.Wireless power and data transfer system using multidirectional magnetic coupler for swarm AUVs[J]. IEEE Transactions on Power Electronics, 2023, 38(2): 1440-1444. [20] Hou Xinyu, Su Yugang, Zuo Zhiping, et al.A novel analysis method based on quadratic eigenvalue problem for multirelay magnetic coupling wireless power transfer[J]. IEEE Transactions on Power Electronics, 2021, 36(9): 9907-9917. [21] Yang Lei, Huang Jingjing, Feng Baoxiang, et al.Undersea wireless power and data transfer system with shared channel powered by marine renewable energy system[J]. IEEE Journal on Emerging and Selected Topics in Circuits and Systems, 2022, 12(1): 242-250. [22] 王得安, 张剑韬, 朱春波, 等. 海洋环境对水下无线电能传输系统的影响机理研究进展[J]. 电工技术学报, 2025, 40(3): 653-675. Wang De’an, Zhang Jiantao, Zhu Chunbo, et al.Review of progress in the study of marine environment effects on underwater wireless power transfer systems[J]. Transactions of China Elec-trotechnical Society, 2025, 40(3): 653-675. [23] Zhang Kehan, Ma Yunshan, Yan Zhengchao, et al.Eddy current loss and detuning effect of seawater on wireless power transfer[J]. IEEE Journal of Emerging and Selected Topics in Power Electronics, 2020, 8(1): 909-917. [24] 靖永志, 付康, 谯柯, 等. 基于积分解调的无线能量与信号同步传输方法[J]. 电工技术学报, 2024, 39(14): 4270-4281. Jing Yongzhi, Fu Kang, Qiao Ke, et al.Simultaneous transmission method of wireless power and signals based on integral demodulation[J]. Transactions of China Electrotechnical Society, 2024, 39(14): 4270-4281. [25] 苏玉刚, 邓晨琳, 胡宏晟, 等. 基于电场耦合的电能信号并行传输系统串扰抑制方法[J]. 电工技术学报, 2024, 39(6): 1613-1626. Su Yugang, Deng Chenlin, Hu Hongsheng, et al.Crosstalk suppression method for electric-field coupled power and signal parallel transmission system[J]. Transactions of China Electrotechnical Society, 2024, 39(6): 1613-1626. [26] Askari A, Stark R, Curran J, et al.Underwater wireless power transfer[C]//2015 IEEE Wireless Power Transfer Conference (WPTC), Boulder, CO, USA, 2015: 1-4. [27] Yao Yousu, Tang Chengxiong, Gao Shenghan, et al.Analysis and design of a simultaneous wireless power and data transfer system featuring high data rate and signal-to-noise ratio[J]. IEEE Transactions on Indu-strial Electronics, 2021, 68(11): 10761-10771. [28] Fan Yuanshuang, Sun Yue, Deng Pengqi, et al.A simultaneous wireless power and high-rate data transfer system based on transient responses regu-lation[J]. IEEE Transactions on Power Electronics, 2023, 38(8): 9362-9366. [29] Fei Yingjun, Xiao Jing, Tang Chunsen, et al.Improving the transmission distance of wireless power transfer systems using coplanar double-coil coupler[C]//2022 IEEE 9th International Conference on Power Electronics Systems and Applications (PESA), Hong Kong, China, 2022: 1-5. [30] Akyildiz I F, Wang Pu, Sun Zhi.Realizing underwater communication through magnetic induction[J]. IEEE Communications Magazine, 2015, 53(11): 42-48. [31] Li Yuzhou, Wang Shengnan, Jin Cheng, et al.A survey of underwater magnetic induction communi-cations: fundamental issues, recent advances, and challenges[J]. IEEE Communications Surveys & Tutorials, 2019, 21(3): 2466-2487.