Application Research of Low-Power Wireless Power Transmission System
Zhao Junfeng1,2,3,Huang Xueliang2,3
1. College of Electronic and Electrical Engineering, Nanyang Institute Of Technology Nanyang 473004 China; 2. College of Electrical Engineering, Southeast University Nanjing 210096 China; 3. Key Laboratory of Jiangsu Province smart grid technology with equipment ZhenjiangJiangsu Province 212000 China
Abstract:The wireless power transfer (WPT) has been receiving a considerable amount of interest. In this paper, we aim to design a universal WPT desktop which can provide power for a variety of WPT device. We defined that its power supply system should be simple, small size and higher power. For this purpose, the complex DC power supply is replaced by using Utility power directly and Main circuit structure is simplified by using the single-switch parallel resonant topo structure. The detailed Transient processes of operation mode of the system are analyzed and then Safety operation condition of the system is proposed. Design and analysis of the system includes both primary and secondary side. It is verified by numerical simulation using MATLAB and the real experiment using the prototype of the WPT desktop with a LED table lamp supplied by the desktop.
赵俊锋,黄学良. 小功率无线电能传输系统应用研究[J]. 电工技术学报, 2015, 30(14): 470-474.
Zhao Junfeng,Huang Xueliang. Application Research of Low-Power Wireless Power Transmission System. Transactions of China Electrotechnical Society, 2015, 30(14): 470-474.
[1] A. Kurs, A. Karalis, R. Moffatt et al. “Wireless power transfer via strongly coupled magnetic resonances,” science, vol. 317, no. 5834, pp. 83-86, 2007. [2] C. Sonntag, J. L. Duarte, and A. J. M. Pemen, "Load position detection and validation on variable-phase contactless energy transfer desktops." pp. 1818-1825. [3] T. Youndo, P. Jongmin, and N. Sangwook, “Mode- Based Analysis of Resonant Characteristics for Near- Field Coupled Small Antennas,” Antennas and Wireless Propagation Letters, IEEE, vol. 8, pp. 1238-1241, 2009. [4] A. P. Sample, D. A. Meyer, and J. R. Smith, “Analysis, Experimental Results, and Range Adapta- tion of Magnetically Coupled Resonators for Wireless Power Transfer,” Industrial Electronics, IEEE Transac- tions on, vol. 58, no. 2, pp. 544-554, 2011. [5] T. Ishizaki, S. Nojiri, T. Ishida et al., "3-D free-access WPT system for charging movable terminals." pp. 219-222. [6] Y. Cheng, and K. Tsunekawa, "Study of WPT system for charging portable devices on a desk." pp. 320-324. [7] K. Jinwook, S. Hyeon-Chang, K. Do-Hyeon et al., “Optimal design of a wireless power transfer system with multiple self-resonators for an LED TV,” Consumer Electronics, IEEE Transactions on, vol. 58, no. 3, pp. 775-780, 2012. [8] Z. Junfeng, H. Xueliang, and W. Wei, “Wireless Power Transfer with Two-Dimensional Resonators,” Magnetics, IEEE Transactions on, vol. 50, no. 1, pp. 1-4, 2014. [9] L. Olvitz, D. Vinko, and T. Svedek, "Wireless power transfer for mobile phone charging device." pp. 141-145. [10] E. Strommer, M. Jurvansuu, T. Tuikka et al., "NFC-Enabled Wireless Charging." pp. 36-41. [11] A. Woojin, J. Sungkwan, L. Wonkyum et al., "Design of coupled resonators for wireless power transfer to mobile devices using magnetic field shaping." pp. 772-776. [12] W. Xin, G. Yan, and W. Wang, “Study of a wireless power transmission system for an active capsule endoscope,” The international journal of medical robotics and computer assisted surgery, vol. 6, no. 1, pp. 113-122, 2010.