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Resonant Type Wireless Power Transfer Using an Optimized Antenna at 1m Distance

1m 거리에서 최적화된 안테나를 통한 공진방식 무선전력전송

  • Kim, Young Hyun (BNR technology) ;
  • Ryu, Daun (Department of Electronics Engineering, Incheon National University) ;
  • Park, Daekil (Department of Electronics Engineering, Incheon National University) ;
  • Koo, Kyung Heon (Department of Electronics Engineering, Incheon National University)
  • Received : 2016.06.01
  • Accepted : 2016.06.29
  • Published : 2016.06.30

Abstract

This paper has optimized WPT (wireless power transfer) antenna, and compared EM (electromagnetic) simulation result with measurement for the magnetic resonant type standard of A4WP (alliance for wireless power) using 6.78MHz frequency and 1m distance. Power transmission distance is affected by various factors such as system shape, antenna size, and resonator coil pitch etc, which were confirmed by the EM simulation. By simulation an optimized WPT antenna was designed for a fixed distance, and the transmission loss ${\mid}S_{21}{\mid}$ has been calculated with changing distance. Measurement was carried for the fabricated antenna, and the measured transmission loss is 1.5dB with 70% efficiency at maximum 1.3m distance compared to the simulated loss of 1.6dB with 69% efficiency

본 논문에서는 자기공진방식 무선전력전송 표준인 A4WP (alliance for wireless power) 주파수 6.78 MHz에서, 1 m 거리 무선전력전송 안테나를 최적화하고 이에 따른 시뮬레이션 및 측정 결과를 비교하였다. 전력전송 거리는 시스템 형태, 안테나의 크기, 공진기내 코일과 코일사이 간격인 피치(pitch) 등 다양한 요인에 따라 영향을 받으며, 전자계 시뮬레이션을 통해 이를 확인하였다. 시뮬레이션을 통해 고정된 거리에 대하여 최적화된 무선전력전송 안테나를 설계하였으며, 거리에 따른 전송손실인 ${\mid}S_{21}{\mid}$ 값을 계산하였다. 설계된 안테나를 제작하여 측정치를 시뮬레이션 값과 비교한 결과, 최대 1.3 m 거리에서 시뮬레이션은 전송손실 1.6dB 및 효율 69 %, 측정결과는 전송손실 1.5dB 및 효율 70 %를 나타내었다.

Keywords

References

  1. Y. K. Moon, S. J. Kang, G. H. Kim, Y. J. Won, and S. O. Im, "Technology trend and implementation for mobile WPT," The Journal of institute of Electronics and Information Engineers, Vol. 38, No. 10, pp. 26-34, Oct.2011
  2. D. U. Ryu, Y. H. Kim, and K. H. Koo, "Performance measurement of the wireless charging devices using electromagnetic Induction Techniques," The Journal of Advanced Navigation Technology, Vol. 19, No. 3, pp. 237-243, Jun. 2015. https://doi.org/10.12673/jant.2015.19.3.237
  3. S. M. Kim, J. I. Moon, I. K. Cho, J. H. Yoon, and W. J. Byun, "The technical trend and future direction of wireless Power Transmission," Electronics and Telecommunications Tremds, Vol. 29, No. 3, pp. 98-106, June 2014.
  4. M. Kesler, Highly Resonant Wireless Power Tranfer : Safe, Efficient, and over Distance, 1th ed. Massachusetts, MA: Witricity Corporation, 2013.
  5. Wirricity, Understanding What WiTricity technology is transferring eletric energy or power over distance without wires is quite simple [Internet], Available: http://witricity.com/technology/witricity-the-basics/
  6. K. Y. Kim, Chapter 10 in .Wireless Power Transfer-Principles and Engineering Explorations, 1st. ed. Rijeka, Denmark: InTech, pp. 207- 226 , 2012
  7. A. P. Sample, 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, pp 544-554, Feb. 2011 https://doi.org/10.1109/TIE.2010.2046002
  8. J. I. Agbinya, Chapter 1 in Wireless Power Transfer, 1st ed. Gistrup, Denmark: River Publishers Series in Communications, pp. 1-34, 2008.
  9. A. Kurs, A. Karalis, R. Moffatt, J. D. Joannopoulos, P. Fisher, and M. Soljacic, "Wireless power transfer via strongly coupled magnetic resonances," Science, New York, Vol. 317, pp. 83-86, July 2007. https://doi.org/10.1126/science.1143254