Browse > Article
http://dx.doi.org/10.26866/jees.2017.17.4.208

An Effective Experimental Optimization Method for Wireless Power Transfer System Design Using Frequency Domain Measurement  

Jeong, Sangyeong (School of Electrical and Computer Engineering, Ulsan National Institute of Science and Technology)
Kim, Mina (School of Electrical and Computer Engineering, Ulsan National Institute of Science and Technology)
Jung, Jee-Hoon (School of Electrical and Computer Engineering, Ulsan National Institute of Science and Technology)
Kim, Jingook (School of Electrical and Computer Engineering, Ulsan National Institute of Science and Technology)
Publication Information
Abstract
This paper proposes an experimental optimization method for a wireless power transfer (WPT) system. The power transfer characteristics of a WPT system with arbitrary loads and various types of coupling and compensation networks can be extracted by frequency domain measurements. The various performance parameters of the WPT system, such as input real/imaginary/apparent power, power factor, efficiency, output power and voltage gain, can be accurately extracted in a frequency domain by a single passive measurement. Subsequently, the design parameters can be efficiently tuned by separating the overall design steps into two parts. The extracted performance parameters of the WPT system were validated with time-domain experiments.
Keywords
Frequency Domain; Inverter; Optimization; Vector Network Analyzer (VNA); Wireless Power Transfer (WPT);
Citations & Related Records
Times Cited By KSCI : 6  (Citation Analysis)
연도 인용수 순위
1 T. Sun, X. Xie, G. Li, Y. Gu, Y. Deng, and Z. Wang, "A two-hop wireless power transfer system with an efficiency- enhanced power receiver for motion-free capsule endoscopy inspection," IEEE Transactions on Biomedical Engineering, vol. 59, no. 11, pp. 3247-3254, 2012.   DOI
2 S. Park, "Dosimetry for resonance-based wireless power transfer charging of electric vehicles," Journal of Electromagnetic Engineering and Science, vol. 15, no. 3, pp. 129-133, 2015.   DOI
3 J. Yungtaek and M. M. Jovanovic, "A contactless electrical energy transmission system for portable-telephone battery chargers," IEEE Transactions on Industrial Electronics, vol. 50, no. 3, pp. 520-527, 2003.   DOI
4 J. Shin, S. Shin, Y. Kim, S. Ahn, S. Lee, G. Jung, S. J. Jeon, and D. H. Cho, "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, pp. 1179-1192, 2014.   DOI
5 Z. Low, R. Chinga, R. Tseng, and J. Lin, "Design and test of a high-power high-efficiency loosely coupled planar wireless power transfer system," IEEE Transactions on Industrial Electronics, vol. 56, no. 5, pp. 1801-1812, 2009.   DOI
6 Q. Zhu, L. Wang, and C. Liao, "Compensate capacitor optimization for kilowatt-level magnetically resonant wireless charging system," IEEE Transactions on Industrial Electronics, vol. 61, no. 12, pp. 6758-6768, 2014.   DOI
7 A. Kurs, A. Karalis, R. Moffatt, J. D. Joannopoulos, P. Fisher, and M. Slijacic, "Wireless power transfer via strongly coupled magnetic resonance," Science, vol. 317, no. 5834, pp. 83-86, 2007.   DOI
8 J. M. Kim, M. Han, and H. Sohn, "Magnetic resonance-based wireless power transmission through concrete structures," Journal of Electromagnetic Engineering and Science, vol. 15, no. 2, pp. 104-110, 2015.   DOI
9 W. Zhang and C. C. Mi, "Compensation topologies of high-power wireless power transfer systems," IEEE Transactions on Vehicular Technology, vol. 65, no. 6, pp. 4768-4778, 2016.   DOI
10 F. van der Pijl, P. Bauer, and M. Castilla, "Control method for wireless inductive energy transfer systems with relatively large air gap," IEEE Transactions on Industrial Electronics, vol. 60, no. 1, pp. 382-390, 2013.   DOI
11 D. Kim and C. Seo, "Reconfigurable wireless power transfer system for multiple receivers," Journal of Electromagnetic Engineering and Science, vol. 16, no. 4, pp. 199-205, 2016.   DOI
12 R. W. Erickson and D. Maksimovic, Fundamentals of Power Electronics, 2nd ed. Norwell, MA: Kluwer, 2001.
13 M. Kiani, U. M. Jow, and M. Ghovanloo, "Design and optimization of a 3-coil inductive link for efficient wireless power transmission," IEEE Transactions on Biomedical Circuits and Systems, vol. 5, no. 6, pp. 579-591, 2011.   DOI
14 H. S. Choi, "Half-bridge LLC resonant converter design using FSFR-series fairchild power switch," Fairchild Semiconductor, San Jose, CA, Application Note AN-4151, 2007.
15 S. Li and C. C. Mi, "Wireless power transfer for electric vehicle applications," IEEE Journal of Emerging and Selected Topics in Power Electronics, vol. 3, no. 1, pp. 4-17, 2015.   DOI
16 Y. Heng and Y. Shu, "A new analytical calculation of the mutual inductance of the coaxial spiral rectangular coils," IEEE Transactions on Magnetics, vol. 50, no. 4, pp. 1-6, 2014.
17 S. S. Mohan, M. del Mar Hershenson, S. P. Boyd, and T. H. Lee, "Simple accurate expressions for planar spiral inductances," IEEE Journal of Solid-State Circuits, vol. 34, no. 10, pp. 1419-1424, 1999.   DOI
18 S. Moon, B. C. Kim, S. Y. Cho, C. H. Ahn, and G. W. Moon, "Analysis and design of a wireless power transfer system with an intermediate coil for high efficiency," IEEE Transactions on Industrial Electronics, vol. 61, no. 11, pp. 5861-5870, 2014.   DOI
19 G. Kim and B. Lee, "Alternative expressions for mutual inductance and coupling coefficient applied in wireless power transfer," Journal of Electromagnetic Engineering and Science, vol. 16, no. 2, pp. 112-118, 2016.   DOI
20 M. Q. Nguyen, Z. Hughes, P. Woods, Y.-S. Seo, S. Rao, and J. Chiao, "Field distribution models of spiral coil for misalignment analysis in wireless power transfer systems," IEEE Transactions on Microwave Theory and Techniques, vol. 62, no. 4, pp. 920-930, 2014.   DOI
21 H. Shim, S. Nam, and B. Lee, "Time-domain analysis of wireless power transfer system behavior based on coupled-mode theory," Journal of Electromagnetic Engineering and Science, vol. 16, no. 4, pp. 219-224, 2016.   DOI
22 K. Colak, E. Asa, M. Bojarski, D. Czarkowski, and O. C. Onar, "A novel phase-shift control of semibridgeless active rectifier for wireless power transfer," IEEE Transactions on Power Electronics, vol. 30, no. 11, pp. 6288-6297, 2015.   DOI
23 S. Kim and B. Lee, "Analysis of efficiencies for multiple input multiple output wireless power transfer systems," Journal of Electromagnetic Engineering and Science, vol. 16, no. 2, pp. 126-133, 2016.   DOI
24 S. Jeong, J. Jung, K. A. Kim, and J. Kim, "Analytical investigation of optimal wireless power transfer topology for electric vehicles," in Proceedings of 2015 IEEE PELS Workshop on Emerging Technologies: Wireless Power (WoW), Daejeon, Korea, 2015, pp. 1-5.
25 T. Imura and Y. Hori, "Maximizing air gap and efficiency of magnetic resonant coupling for wireless power transfer using equivalent circuit and Neumann formula," IEEE Transactions on Industrial Electronics, vol. 58, no. 10, pp. 4746-4752, 2011.   DOI
26 J. Kim, D. H. Kim, and Y. J. Park, "Analysis of capacitive impedance matching networks for simultaneous wireless power transfer to multiple devices," IEEE Transactions on Industrial Electronics, vol. 62, no. 5, pp. 2807-2813, 2015.   DOI