Magnetic resonant wireless power transfer (WPT) is an emerging technology that may create new applications for wireless power charging. However, low efficiency resulting from the change of the transfer distance is a main obstructing factor for promoting this technology. In this paper, a method of fast tracking optimum efficiency is proposed. The input impedance value is obtained by measuring the input current. Then the transfer distance is estimated by the input impedance value. The optimum load resistor is obtained under a given transfer distance. In addition, the extended L-matching network is proposed in order to automatically adjust the load resistor. The key parameters of the matching network are also given. The optimum efficiency can be fast tracked by the proposed method as the transfer distance varies. The WPT system and the extended L-matching network are designed. Simulated and experimental results validating the proposed method are given.
2. Karalis, A., J. D. Joannopoulos, and M. Soljaci, "Efficient wireless non-radiative mid-range energy transfer," Annals of Physics, Vol. 323, No. 1, 34-48, 2008.
doi:10.1016/j.aop.2007.04.017
3. Kurs, A., R. Moffatt, and M. Soljacic, "Simultaneous mid-range power transfer to multiple devices," Applied Physics Letters, Vol. 96, No. 4, 044102-044102-3, 2010.
doi:10.1063/1.3284651
4. Chen, J., Z. Ding, and Z. Hu, "Metamaterial-based high-efficiency wireless power transfer system at 13.56 MHz for low power applications," Progress In Electromagnetics Research B, Vol. 72, No. 1, 17-30, 2017.
doi:10.2528/PIERB16071509
5. Shaw, T., A. Roy, and D. Mitra, "Efficiency enhancement of wireless power transfer system using MNZ metamaterials," Progress In Electromagnetics Research C, Vol. 68, No. 1, 11-19, 2016.
doi:10.2528/PIERC16081101
6. Shin, J., et al., "Design and implementation of shaped magnetic-resonance-based wireless power transfer system for roadway-powered moving electric vehicles," IEEE Transactions on Industrial Electronics, Vol. 61, No. 3, 1179-1192, 2014.
doi:10.1109/TIE.2013.2258294
7. Ram Rakhyani, A. K., S. Mirabbasi, and M. Chiao, "Design and optimization of resonance-based efficient wireless power delivery systems for biomedical implants," IEEE Transactions on Biomedical Circuits and Systems, Vol. 5, No. 1, 48-63, 2011.
doi:10.1109/TBCAS.2010.2072782
8. Choi, S. Y., et al., "Generalized active EMF cancel methods for wireless electric vehicles," IEEE Transactions on Power Electronics, Vol. 29, No. 11, 5770-5783, 2014.
doi:10.1109/TPEL.2013.2295094
9. Wei, X. Z., Z. S. Wang, and H. F. Dai, "A critical review of wireless power transfer via strongly coupled magnetic resonances," Energies, Vol. 7, No. 7, 4316-4341, Jul. 2014.
doi:10.3390/en7074316
10. Sample, A. P., D. A. Meyer, and J. R. Smith, "Analysis, experimental results, and range adaptation of magnetically coupled resonators for wireless power transfer," IEEE Transactions on Industrial Electronics, Vol. 58, No. 2, 544-554, 2011.
doi:10.1109/TIE.2010.2046002
11. Kim, N. Y., et al., "Adaptive frequency with power-level tracking system for efficient magnetic resonance wireless power transfer," Electronics Letters, Vol. 48, No. 8, 452-454, 2012.
doi:10.1049/el.2012.0580
12. Park, J., et al., "Investigation of adaptive matching methods for near-field wireless power transfer," IEEE Transactions on Antennas and Propagation, Vol. 59, No. 5, 1769-1773, 2011.
doi:10.1109/TAP.2011.2123061
13. Duong, T. P. and J.-W. Lee, "Experimental results of high-efficiency resonant coupling wireless power transfer using a variable coupling method," IEEE Microwave and Wireless Components Letters, Vol. 21, No. 8, 442-444, 2011.
doi:10.1109/LMWC.2011.2160163
14. Huang, S., et al., "A comparative study between novel and conventional four-resonator coil structures in wireless power transfer," IEEE Transactions on Magnetics, Vol. 50, No. 11, 1-4, 2014.
15. Fu, M., C. Ma, and X. Zhu, "A cascaded boost-buck converter for high efficiency wireless power transfer systems," IEEE Transactions on Industrial Informatics, Vol. 10, No. 3, 1972-1980, 2014.
doi:10.1109/TII.2013.2291682
16. Liu, S., et al., "A general theory to analyse and design wireless power transfer based on impedance matching," International Journal of Electronics, Vol. 101, No. 10, 1375-1404, Oct. 2014.
doi:10.1080/00207217.2013.832392
17. Li, H., et al., "A maximum efficiency point tracking control scheme for wireless power transfer systems using magnetic resonant coupling," IEEE Transactions on Power Electronics, Vol. 30, No. 7, 3998-4008, 2015.
doi:10.1109/TPEL.2014.2349534
18. Zhong, W. X. and S. Y. R. Hui, "Maximum energy efficiency tracking for wireless power transfer systems," IEEE Transactions on Power Electronics, Vol. 30, No. 7, 4025-4034, Jul. 2015.
doi:10.1109/TPEL.2014.2351496
19. Lim, Y., et al., "An adaptive impedance-matching network based on a novel capacitor matrix for wireless power transfer," IEEE Transactions on Power Electronics, Vol. 29, No. 8, 4403-4413, 2014.
doi:10.1109/TPEL.2013.2292596
20. Conway, J. T., "Inductance calculations for noncoaxial coils using bessel functions," IEEE Transactions on Magnetics, Vol. 43, No. 3, 1023-1034, 2007.
doi:10.1109/TMAG.2006.888565
21. Ye, Z., P. K. Jain, and P. C. Sen, "A full-bridge resonant inverter with modified phase-shift modulation for high-frequency AC power distribution systems," IEEE Transactions on Industrial Electronics, Vol. 54, No. 5, 2831-2845, 2007.
doi:10.1109/TIE.2007.896030