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Research on Three-Coils Magnetic Coupling Resonant Wireless Power Transmission with Power Amplifier


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DOI: https://doi.org/10.15866/iree.v16i4.20449

Abstract


The power of a three-coils magnetic coupling resonant Wireless Power Transmission (WPT) system driven by the signal generator is generally too small to be used directly. Adding a power amplifier before the transmitting coil of the three-coils magnetic coupling resonant WPT system is a promising solution to enhance the received power on the load, namely, the load power. The theoretical analysis of the three-coils magnetic coupling resonant WPT system is carried out, while the functional expressions of the load power and transmission efficiency are deduced. The position of the relay coil with maximum load power or transmission efficiency is analyzed for three different situations. The power amplifier parameters are designed by using the Advanced Design System (ADS) radio frequency simulation platform and then the prototype of the three-coils magnetic coupling resonant WPT system with a power amplifier is built and verified. The final results show that the load power can significantly increase from mill watt level to watt level by adding a power amplifier.
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Keywords


Magnetic Coupling Resonance; Wireless Power Transmission; Power Amplifier; ADS Simulation

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References


A. Kurs, A. Karalis, R. Moffatt, et al, Wireless Power Transfer Via Strongly Coupled Magnetic Resonances, Science, vol. 317, n. 5834, 2007, pp. 83-86.
https://doi.org/10.1126/science.1143254

M. Machnoor, E.S.G. Rodriguez, P. Kosta, et al, Analysis and Design of a 3-Coil Wireless Power Transmission System for Biomedical Applications, IEEE Transactions on Antennas and Propagation, vol. 67, n. 8, 2019, pp. 5012-5024.
https://doi.org/10.1109/TAP.2018.2883687

R. Suwahara, R. Kato, K. Murata, T. Watanabe, Y. Shimatani and S. Kiryu, A Coil for Wireless Power Transmission by Using Sewing Technique with Litz Wire, Journal of the Japan Society of Applied Electromagnetics and Mechanics, vol. 27, n.1, 2019, pp.49-54.
https://doi.org/10.14243/jsaem.27.49

R.Sasakia, K. Koizumia, and S. Kiryub, Wireless power transmission with a sown auxiliary coil to improve power efficiency for a plantable device, International Journal of Applied Electromagnetics and Mechanics, vol. 64, 2020, pp. 843-851.
https://doi.org/10.3233/JAE-209397

H.S.Gu, H.S. Choi, Analysis of Wireless Power Transmission Characteristics for High-Efficiency Resonant Coils, IEEE Transaction on Applied Superconductivity, vol. 30, n. 4, 2020.
https://doi.org/10.1109/TASC.2020.2966424

Elwalaty, M., Jemli, M., Ben Azza, H., Experimental Investigation and Optimal Air Gap Selection for Electric Vehicles Wireless Charging System, (2019) International Review of Electrical Engineering (IREE), 14 (6), pp. 398-406.
https://doi.org/10.15866/iree.v14i6.17134

Y.B. Jiang, M. Wu, S.Y Yin, et al, An Optimized Parameter Design Method of WPT System for EV Charging Based on Optimal Operation Frequency Range, Proc. IEEE Applied Power Electronics Conference and Exposition(APEC), Anaheim, CA, USA, Mar. 2019, pp. 1528-1532.
https://doi.org/10.1109/APEC.2019.8722193

Y.B. Jiang, L.L Wang, Y. Wang, et al, Analysis, Design, and Implementation of WPT System for EV's Battery Charging Based on Optimal Operation Frequency Range, IEEE Transactions on Power Electronics, vol. 34, n. 7, 2019, pp. 6890-6905.
https://doi.org/10.1109/TPEL.2018.2873222

Fanton, J., Wireless Power Transmission: State of the Art and Perspectives, (2019) International Review of Electrical Engineering (IREE), 14 (3), pp. 205-219.
https://doi.org/10.15866/iree.v14i3.17263

https://fr.shopping.rakuten.com/offer/buy/3844114950

B.Z. Niu, T.G. Xue, and X.Z Meng, Research on Magnetic Coupled Resonant Wireless Charging Technology Applied To Intelligent Patrol Robots, Journal of Physics: Conference Series 2020.
https://doi.org/10.1088/1742-6596/1650/2/022095

W. Li, L.Y. Wu, W.P. Wang, Research Progress of Laser Wireless Power Transmission, Laser & Optoelectronics Progress, vol. 55, n. 2, 2018, pp. 79-88.
https://doi.org/10.3788/LOP55.020008

Y.G. Su, Y.M. Zhao, S.Y. Xie, Control of Load Soft-Switched for Electric-Field Coupled Power Transfer System, Transactions of China Electrotechnical Society, vol. 32, n. 18, 2017, pp. 44-51.

B. Zhang, X.J. Shu, L.H. Wu, Problems of Wireless Power Transmission Technology Urgent to Be Solved and Corresponding Countermeasures, Automation of Electric Power Systems, vol. 43, n. 18, 2019, pp. 1-20.

X. Huang, W. Wang, and L. Tan, Technical Progress and Application Development of Magnetic Coupling Resonant Wireless Power Transfer, Dianli Xitong Zidonghua/Automation of Electric Power Systems, vol. 41, n. 2, 2017, pp. 2-14.

C. Jiang, K.T. Chau, C. Liu, and C.H.T. Lee, An Overview of Resonant Circuits for Wireless Power Transfer, Energies (Switzerland), vol. 10, n. 7, 2017, pp. 820-894.
https://doi.org/10.3390/en10070894

W.X. Chen and Q.H. Chen, Review and Research Progress of Magnetic Resonance Wireless Power Transmission Technology, Advanced Technology of Electrical Engineering and Energy, vol. 35, n. 9, 2016, pp. 35-47.

C. Huang, Study on the Transmission Characteristics Under Different Load Conditions of Magnetic Resonant Radio Power Transmission System, Electrical Switch, vol. 3, 2019, pp. 14-18.

Z. Huang, J. Zou, Y. Wang, and L. Wang, Application Research of Wireless Power Transmission Technology in High-Voltage Equipment Based on Relay Coil, Diangong Jishu Xuebao/Transactions of China Electrotechnical Society, vol. 30, n. 11, 2015, pp. 45-52.

S. Jiang and C.H. Han, Efficacy of Magnetic Coupling Resonant Wireless Power Transmission Systems, Jilin University of Architecture School of Electrical and Computer Science, vol. 35, n.7, 2019, pp. 92-94.

K. Kang, X.Y. Hou, Z.P. Zuo, et al, Modeling and Transmission Efficiency Analysis of Multi-relay Mode Radio Transmission System, Appliances and Energy Efficiency Management Technology, vol. 9, n.17, 2019, pp. 50-55.

Z.H. Huang, L. Wang, and J.Y. Zou, The Influence of Coil Location Parameters to Load Power in Wireless Power Transmission with Two or Three Relay Coils, Journal of Electrical Technology, vol. 32, n.5, 2017, pp. 208-214.

Yi, K., Capacitive Coupling Wireless Power Transfer Circuit with a Compensated L for High Voltage Gain and Soft Switching, (2018) International Review of Electrical Engineering (IREE), 13 (5), pp. 352-356.
https://doi.org/10.15866/iree.v13i5.15343

M.-L. Kung and K.-H. Lin, Dual-band coil module with repeaters for diverse wireless power transfer applications, IEEE Trans. Microw.Theory Techn., vol. 66, n. 1, 2018, pp. 332-345.
https://doi.org/10.1109/TMTT.2017.2711010

D. Ahn and P. P. Mercier, Wireless power transfer with concurrent 200-Khz and 6.78-Mhz operation in a single transmitter device, IEEE Trans. Power Electron., vol. 31, n. 7. 2016, pp. 5018-5029.
https://doi.org/10.1109/TPEL.2015.2480122

J. Liu, C. Wang, X. Wang, and W. Ge, Frequency splitting and transmission characteristics of MCR-WPT system considering nonlinearities of compensation capacitors, Electronics, vol. 9, n. 1, p. 141, Jan. 2020.
https://doi.org/10.3390/electronics9010141

W.Q. Niu, J.X. Chu, W. Gu, and A.D. Shen, Exact analysis of frequency splitting phenomena of contactless power transfer systems, IEEE Trans. Circuits Syst. I, Reg. Papers, 2018, vol. 65, n. 6, pp. 4434-4445.

Z.J.Liao, S.Ma, Q.K. Feng, C.Y. Xia, D.S.Yu, Frequency Splitting Elimination and Utilization in Magnetic Coupling Wireless Power Transfer Systems, IEEE Transactions on Circuits and Systems, Vol. 68, 2021, pp 929-939.
https://doi.org/10.1109/TCSI.2020.3040750

J.P Li, Y. Lu, F.X Liu, etc, Optimization method of magnetic coupling resonant wireless power transfer system with single relay coil, Progress In Electromagnetics Research M, vol. 80, 2019, pp.57-70.
https://doi.org/10.2528/PIERM18110107

G. Liu, B. Zhang, W. Xiao, D. Qiu, Y. Chen, and J. Guan, Omnidirectional Wireless Power Transfer System Based on Rotary Transmitting Coil for Household Appliances, Energies, vol. 11, n.4, 2018, pp. 816-878.
https://doi.org/10.3390/en11040878

I. Bahl, J.-F. Bar, Bao, et al. Radio Frequency and Microwave Transistor Amplifier Foundation, Publishing House of Electronics Industry, 2013.

X.F. Xu, ADS2008 RF Circuit Design and Simulation Example Publishing House of Electronics Industry, 2013.

X.Y. Feng and H.B. Jiang, ADS 2012 RF Circuit Design and Simulation , Publishing House of Electronics Industry, 2013.

Y. Huang, Design and Simulation of the Radio Frequency Low-Noise Amplifier Based on ADS, Journal of Xian University of Posts and Telecommunications, vol. 15, n.3, 2010, pp. 26-29.

K.M. Noel, Research and Design of a Class E Power Amplifier, Chongqing: Chongqing University, 2017.

S. Fregonese, M. de Matos, D. Mele, C. Maneux, H. Happy, and T. Zimmer, Source-Pull and Load-Pull Characterization of Graphene FET, IEEE Journal of the Electron Devices Society, vol. 3, n.1, 2015, pp. 49-53.
https://doi.org/10.1109/JEDS.2014.2360408

X.Y. Zhang, Research on Multi-coil Magnetically coupled Resonant Wireless Power Transmission System, Baoding: North China Electric Power University, 2019.

M. Coppola, P. Cennamo, A. Dannier, D. Iannuzzi and S. Meo, Wireless Power Transfer circuit for e-bike battery charging system, 2018 IEEE International Conference on Electrical Systems for Aircraft, Railway, Ship Propulsion and Road Vehicles & International Transportation Electrification Conference (ESARS-ITEC), 2018, pp. 1-5.
https://doi.org/10.1109/ESARS-ITEC.2018.8607342


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