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DESIGN OF WIRELESS POWER TRANSFER SYSTEM WITH TRIPLET COIL CONFIGURATION BASED ON MAGNETIC RESONANCE

Yıl 2017, Cilt: 17 Sayı: 1, 3193 - 3199, 27.03.2017

Öz

Wireless power transfer (WPT) system based on magnetic resonance is presented here. The aim is to transfer energy wirelessly from transmitter coil to receiver coil based on magnetic resonance. A novel system with a two-coil transmitter connected to a single power source is proposed here in a triplet configuration with a single receiving coil. The two-coil transmitter is introduced as an extension to the converge area. The equivalent lumped element circuit model is presented and mathematical equations for scattering parameters have been derived. The proposed configuration is simulated using both circuit (ADS) and electromagnetic (EMPRO) simulators. The effect of the coupling between coils is investigated using simulation. The proposed configuration is practically implemented using solenoid coils and tested to verify the simulation results. The effect of receiver displacement on efficiency is also investigated.

Kaynakça

  • [1] S.Y. Hui, "Planar wireless charging technology for portable electronic products and Qi," in Proceedings of the IEEE , vol.101, no.6, pp.1290-1301, June 2013.
  • [2] C-S. Wang, O.H. Stielau, and G.A.Covic, "Design considerations for a contactless electric vehicle battery charger," in IEEE Transactions on Industrial Electronics, vol.52, no.5, pp.1308-1314, Oct. 2005.
  • [3] T. Imura, H.Okabe, and Y.Hori, "Basic experimental study on helical antennas of wireless power transfer for Electric Vehicles by using magnetic resonant couplings," in proceedings of Vehicle Power and Propulsion Conference, pp.936-940, 7-10 Sept. 2009.
  • [4] I-K. Cho, S-M Kim, J-I. Moon, J-H. Yoon; S-I. Jeon, and J-I. Choi, "Wireless power transfer system for docent robot by using magnetic resonant coils," in proceedings of IEEE 5th International Symposium on Microwave, Antenna, Propagation and EMC Technologies for Wireless Communications (MAPE), pp.251-254, 29-31 Oct. 2013.
  • [5] T. Deyle and M. Reynolds, "Surface based wireless power transmission and bidirectional communication for autonomous robot swarms," in proceedings of IEEE International Conference on Robotics and Automation (ICRA), pp.1036-1041, 19-23 May 2008.
  • [6] X. Li; C-Y. Tsui, and W-H. Ki, "A 13.56 MHz wireless power transfer system with reconfigurable resonant regulating rectifier and wireless power control for implantable medical devices," in IEEE Journal of Solid-State Circuits, vol.50, no.4, pp.978-989, April 2015.
  • [7] J. Walk, J. Weber, C. Soell, R. Weigel, G. Fischer, and T. Ussmueller, "Remote powered medical implants for telemonitoring," in Proceedings of the IEEE , vol.102, no.11, pp.1811-1832, Nov. 2014.
  • [8] A. Kurs, A. Karalis, R. Moffatt, J. D. Joannopoulos, P. Fisher, and M. Soljacic, “Wireless power transfer via strongly coupled magnetic resonances,” Science, vol. 317, no. 6, pp. 83–86, 2007.
  • [9] B. Luo, S. Wu, and N. Zhou, "Flexible design method for multi-repeater wireless power transfer system based on coupled resonator bandpass filter model," in IEEE Transactions on Circuits and Systems, vol.61, no.11, pp.3288-3297, Nov. 2014.
  • [10] T. Imura, "Equivalent circuit for repeater antenna for wireless power transfer via magnetic resonant coupling considering signed coupling," in proceeding of 6th IEEE Conference on Industrial Electronics and Applications (ICIEA), pp.1501-1506, 21-23 June 2011.
  • [11] D. Ahn and S. Hong, "A study on magnetic field repeater in wireless power transfer," in IEEE Transactions on Industrial Electronics, vol.60, no.1, pp.360-371, Jan. 2013.
  • [12] Z. Yan, Y. Li, C. Zhang, and Q. Yang, "Influence factors analysis and improvement method on efficiency of wireless power transfer via coupled magnetic resonance," in IEEE Transactions on Magnetics, vol.50, no.4, pp.1-4, April 2014.
  • [13] V. Jiwariyavej, T. Imura, and Y. Hori, "Coupling coefficients estimation of wireless power transfer system via magnetic resonance coupling using information from either side of the system," in IEEE Journal of Emerging and Selected Topics in Power Electronics, vol.3, no.1, pp.191-200, March 2015.
  • [14] K.E. Koh, T.C. Beh, T. Imura, and Y. Hori, "Multi-receiver and repeater wireless power transfer via magnetic resonance coupling - Impedance matching and power division utilizing impedance inverter," in proceeding of 15th International Conference on Electrical Machines and Systems (ICEMS), pp.1-6, 21-24 Oct. 2012.
  • [15] T. Higashino, M. Ziji, M. Okada, Y. Tatsuta, Y. Goto, Y. Tsuruda, and R. Tanaka, "A new configuration of magnetic coupled power transfer using parallel line feeder," in proceedings of Wireless Power Transfer (WPT) conference, pp.171-174, 15-16 May 2013.
  • [16] M.Q. Nguyen, Y. Chou, D. Plesa, S. Rao, and J-C. Chiao, "Multiple-inputs and multiple-outputs wireless power combining and delivering systems," in IEEE Transactions on Power Electronics, vol.30, no.11, pp.6254-6263, Nov. 2015.
  • [17] http://www.keysight.com/en/pc-1297143/empro-3d-em-simulation-software?&cc=PS&lc=eng
Yıl 2017, Cilt: 17 Sayı: 1, 3193 - 3199, 27.03.2017

Öz

Kaynakça

  • [1] S.Y. Hui, "Planar wireless charging technology for portable electronic products and Qi," in Proceedings of the IEEE , vol.101, no.6, pp.1290-1301, June 2013.
  • [2] C-S. Wang, O.H. Stielau, and G.A.Covic, "Design considerations for a contactless electric vehicle battery charger," in IEEE Transactions on Industrial Electronics, vol.52, no.5, pp.1308-1314, Oct. 2005.
  • [3] T. Imura, H.Okabe, and Y.Hori, "Basic experimental study on helical antennas of wireless power transfer for Electric Vehicles by using magnetic resonant couplings," in proceedings of Vehicle Power and Propulsion Conference, pp.936-940, 7-10 Sept. 2009.
  • [4] I-K. Cho, S-M Kim, J-I. Moon, J-H. Yoon; S-I. Jeon, and J-I. Choi, "Wireless power transfer system for docent robot by using magnetic resonant coils," in proceedings of IEEE 5th International Symposium on Microwave, Antenna, Propagation and EMC Technologies for Wireless Communications (MAPE), pp.251-254, 29-31 Oct. 2013.
  • [5] T. Deyle and M. Reynolds, "Surface based wireless power transmission and bidirectional communication for autonomous robot swarms," in proceedings of IEEE International Conference on Robotics and Automation (ICRA), pp.1036-1041, 19-23 May 2008.
  • [6] X. Li; C-Y. Tsui, and W-H. Ki, "A 13.56 MHz wireless power transfer system with reconfigurable resonant regulating rectifier and wireless power control for implantable medical devices," in IEEE Journal of Solid-State Circuits, vol.50, no.4, pp.978-989, April 2015.
  • [7] J. Walk, J. Weber, C. Soell, R. Weigel, G. Fischer, and T. Ussmueller, "Remote powered medical implants for telemonitoring," in Proceedings of the IEEE , vol.102, no.11, pp.1811-1832, Nov. 2014.
  • [8] A. Kurs, A. Karalis, R. Moffatt, J. D. Joannopoulos, P. Fisher, and M. Soljacic, “Wireless power transfer via strongly coupled magnetic resonances,” Science, vol. 317, no. 6, pp. 83–86, 2007.
  • [9] B. Luo, S. Wu, and N. Zhou, "Flexible design method for multi-repeater wireless power transfer system based on coupled resonator bandpass filter model," in IEEE Transactions on Circuits and Systems, vol.61, no.11, pp.3288-3297, Nov. 2014.
  • [10] T. Imura, "Equivalent circuit for repeater antenna for wireless power transfer via magnetic resonant coupling considering signed coupling," in proceeding of 6th IEEE Conference on Industrial Electronics and Applications (ICIEA), pp.1501-1506, 21-23 June 2011.
  • [11] D. Ahn and S. Hong, "A study on magnetic field repeater in wireless power transfer," in IEEE Transactions on Industrial Electronics, vol.60, no.1, pp.360-371, Jan. 2013.
  • [12] Z. Yan, Y. Li, C. Zhang, and Q. Yang, "Influence factors analysis and improvement method on efficiency of wireless power transfer via coupled magnetic resonance," in IEEE Transactions on Magnetics, vol.50, no.4, pp.1-4, April 2014.
  • [13] V. Jiwariyavej, T. Imura, and Y. Hori, "Coupling coefficients estimation of wireless power transfer system via magnetic resonance coupling using information from either side of the system," in IEEE Journal of Emerging and Selected Topics in Power Electronics, vol.3, no.1, pp.191-200, March 2015.
  • [14] K.E. Koh, T.C. Beh, T. Imura, and Y. Hori, "Multi-receiver and repeater wireless power transfer via magnetic resonance coupling - Impedance matching and power division utilizing impedance inverter," in proceeding of 15th International Conference on Electrical Machines and Systems (ICEMS), pp.1-6, 21-24 Oct. 2012.
  • [15] T. Higashino, M. Ziji, M. Okada, Y. Tatsuta, Y. Goto, Y. Tsuruda, and R. Tanaka, "A new configuration of magnetic coupled power transfer using parallel line feeder," in proceedings of Wireless Power Transfer (WPT) conference, pp.171-174, 15-16 May 2013.
  • [16] M.Q. Nguyen, Y. Chou, D. Plesa, S. Rao, and J-C. Chiao, "Multiple-inputs and multiple-outputs wireless power combining and delivering systems," in IEEE Transactions on Power Electronics, vol.30, no.11, pp.6254-6263, Nov. 2015.
  • [17] http://www.keysight.com/en/pc-1297143/empro-3d-em-simulation-software?&cc=PS&lc=eng
Toplam 17 adet kaynakça vardır.

Ayrıntılar

Konular Mühendislik
Bölüm Makaleler
Yazarlar

Talal F. Skaik Bu kişi benim

Basel O. Alwadiya Bu kişi benim

Yayımlanma Tarihi 27 Mart 2017
Yayımlandığı Sayı Yıl 2017 Cilt: 17 Sayı: 1

Kaynak Göster

APA Skaik, T. F., & Alwadiya, B. O. (2017). DESIGN OF WIRELESS POWER TRANSFER SYSTEM WITH TRIPLET COIL CONFIGURATION BASED ON MAGNETIC RESONANCE. IU-Journal of Electrical & Electronics Engineering, 17(1), 3193-3199.
AMA Skaik TF, Alwadiya BO. DESIGN OF WIRELESS POWER TRANSFER SYSTEM WITH TRIPLET COIL CONFIGURATION BASED ON MAGNETIC RESONANCE. IU-Journal of Electrical & Electronics Engineering. Mart 2017;17(1):3193-3199.
Chicago Skaik, Talal F., ve Basel O. Alwadiya. “DESIGN OF WIRELESS POWER TRANSFER SYSTEM WITH TRIPLET COIL CONFIGURATION BASED ON MAGNETIC RESONANCE”. IU-Journal of Electrical & Electronics Engineering 17, sy. 1 (Mart 2017): 3193-99.
EndNote Skaik TF, Alwadiya BO (01 Mart 2017) DESIGN OF WIRELESS POWER TRANSFER SYSTEM WITH TRIPLET COIL CONFIGURATION BASED ON MAGNETIC RESONANCE. IU-Journal of Electrical & Electronics Engineering 17 1 3193–3199.
IEEE T. F. Skaik ve B. O. Alwadiya, “DESIGN OF WIRELESS POWER TRANSFER SYSTEM WITH TRIPLET COIL CONFIGURATION BASED ON MAGNETIC RESONANCE”, IU-Journal of Electrical & Electronics Engineering, c. 17, sy. 1, ss. 3193–3199, 2017.
ISNAD Skaik, Talal F. - Alwadiya, Basel O. “DESIGN OF WIRELESS POWER TRANSFER SYSTEM WITH TRIPLET COIL CONFIGURATION BASED ON MAGNETIC RESONANCE”. IU-Journal of Electrical & Electronics Engineering 17/1 (Mart 2017), 3193-3199.
JAMA Skaik TF, Alwadiya BO. DESIGN OF WIRELESS POWER TRANSFER SYSTEM WITH TRIPLET COIL CONFIGURATION BASED ON MAGNETIC RESONANCE. IU-Journal of Electrical & Electronics Engineering. 2017;17:3193–3199.
MLA Skaik, Talal F. ve Basel O. Alwadiya. “DESIGN OF WIRELESS POWER TRANSFER SYSTEM WITH TRIPLET COIL CONFIGURATION BASED ON MAGNETIC RESONANCE”. IU-Journal of Electrical & Electronics Engineering, c. 17, sy. 1, 2017, ss. 3193-9.
Vancouver Skaik TF, Alwadiya BO. DESIGN OF WIRELESS POWER TRANSFER SYSTEM WITH TRIPLET COIL CONFIGURATION BASED ON MAGNETIC RESONANCE. IU-Journal of Electrical & Electronics Engineering. 2017;17(1):3193-9.