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Design of a Resonant Point-Multipoint Wireless Power Transmission System

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Języki publikacji
EN
Abstrakty
EN
With the exponential growth of IoT (Internet of Things), Industry 4.0, and electrical vehicles, there is a growing need for flexible energy sources. Wireless energy transfer is becoming increasingly important in this context, as it enables physical devices to be more flexible and allows for the simultaneous powering of multiple loads. This study presents a wireless energy transfer system that uses solenoid coils in inductive resonant mode. The system is configured in a point multipoint setup, with a circular transmitter coil and two identical circular receiver coils placed inside the transmitter. We use mathematical modeling to develop circuit theory models and identify the most efficient topology for the system. In addition, we propose a simple and cost-effective self-oscillating electronic converter design with two switches for system supply. Our numerical and experimental results demonstrate that the proposed system is viable and functional, achieving a power output of 1.7 W and efficiency of 27%.
Rocznik
Strony
1--7
Opis fizyczny
Bibliogr. 25 poz., fig., tab.
Twórcy
  • Department of Electrical Engineering, CEFET-MG, Minas Gerais 30510-000, Brazil
  • Department of Electrical Engineering, CEFET-MG, Minas Gerais 30510-000, Brazil
Bibliografia
  • [1] L. Xie, Y. Shi, Y.T. Hou, and A. Lou, “Wireless power transfer and applications to sensor networks,” IEEE Wireless Communications, vol. 20, no. 4, pp. 140-145, 2013.
  • [2] Y. Wang, J. Qiao, J. Du, F. Wang, and W. Zhang, “A view of research on wireless power transmission,” in Journal of Physics: Conference Series, vol. 1074, no. 1. IOP Publishing, 2018, p. 012140.
  • [3] A. Mahesh, B. Chokkalingam, and L. Mihet-Popa, “Inductive wireless power transfer charging for electric vehicles–a review,” IEEE Access, vol. 9, pp. 137 667-137 713, 2021.
  • [4] S. Malebary, “Wireless mobile charger excursion optimization algorithm in wireless rechargeable sensor networks,” IEEE Sensors Journal, vol. 20, no. 22, pp. 13 842-13 848, 2020.
  • [5] S.R. Khan, S.K. Pavuluri, G. Cummins, and M.P. Desmulliez, “Wireless power transfer techniques for implantable medical devices: A review,” Sensors, vol. 20, no. 12, p. 3487, 2020.
  • [6] H. Zhuang, W. Wang, K. Zhao, Q. Fei, and G. Yan, “Design and analysis of a wireless power transfer system for capsule robot using an optimised planar square spiral transmitting coil pair,” The International Journal of Medical Robotics and Computer Assisted Surgery, vol. 18, no. 4, p. E2399, 2022.
  • [7] M. Nica, C. Forbrigger, and E. Diller, “A novel magnetic transmission for powerful miniature surgical robots,” IEEE/ASME Transactions on Mechatronics, vol. 27, no. 6, pp. 5541-5550, 2022.
  • [8] F.H. Sumi, L. Dutta, and F. Sarker, “Future with wireless power transfer technology,” J. Electr. Electron. Syst, vol. 7, no. 1000279, pp. 2332-0796, 2018.
  • [9] 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. 5834, pp. 83-86, 2007.
  • [10] J. Chen, C.W. Yu, and W. Ouyang, “Efficient wireless charging pad deployment in wireless rechargeable sensor networks,” IEEE Access, vol. 8, pp. 39 056-39 077, 2020.
  • [11] J.-H. Cho, S. Jung, and Y.-J. Kim, “Wireless power transfer for variable load, distance, and power division ratio in a loosely-coupled multiple-receiver relay system,” IEEE Transactions on Industrial Electronics, vol. 70, no. 7, pp. 6809-6818, 2023.
  • [12] C. Cheng, Z. Zhou, W. Li, C. Zhu, Z. Deng, and C.C. Mi, “A multi-load wireless power transfer system with series-parallel-series compensation,” IEEE Transactions on Power Electronics, vol. 34, no. 8, pp. 7126-7130, 2019.
  • [13] M.N.O. Sadiku, Elements of electromagnetics. Oxford University Press, 2018.
  • [14] X. Liu, X. Yuan, C. Xia, and X. Wu, “Analysis and utilization of the frequency splitting phenomenon in wireless power transfer systems,” IEEE Transactions on Power Electronics, vol. 36, no. 4, pp. 3840-3851, 2021.
  • [15] Z.-J. Liao, S. Ma, Q.-K. Feng, C. Xia, and D. Yu, “Frequency splitting elimination and utilization in magnetic coupling wireless power transfer systems,” IEEE Transactions on Circuits and Systems I: Regular Papers, vol. 68, no. 2, pp. 929-939, 2021.
  • [16] M. Ishihara, K. Fujiki, K. Umetani, and E. Hiraki, “Automatic active compensation method of cross-coupling in multiple-receiver resonant inductive coupling wireless power transfer systems,” in 2019 IEEE Energy Conversion Congress and Exposition (ECCE), 2019, pp. 4584-4591.
  • [17] P. Jayathurathnage, Y. Liu, and J. Kyyrä, “Self-decoupled and integrated coils for modular multitransmitter wireless power transfer systems,” IEEE Transactions on Power Electronics, vol. 37, no. 11, pp. 12 962-12 967, 2022.
  • [18] A.C. de Queiroz, “Cálculo de indutâncias e indutâncias mútuas pelo método de maxwell,” 1a. Semana da Eletrônica, UFRJ, 2003.
  • [19] D.W. Knight, “An introduction to the art of solenoid inductance calculation with emphasis on radio-frequency applications,” ver. 0.20, Feb, vol. 4, 2016.
  • [20] M. Soma, D.C. Galbraith, and R.L. White, “Radio-frequency coils in implantable devices: Misalignment analysis and design procedure,” IEEE Transactions on Biomedical Engineering, vol. BME-34, no. 4, pp. 276-282, 1987.
  • [21] C. Jiang, K. Chau, C. Liu, and C.H. Lee, “An overview of resonant circuits for wireless power transfer,” Energies, vol. 10, no. 7, p. 894, 2017.
  • [22] X. Ge, L. Cheng, Y. Yao, and W.-H. Ki, “A 6.78 mhz single-stage wireless power transmitter using a 3-mode zero-voltage switching class-d pa,” IEEE Transactions on Circuits and Systems I: Regular Papers, vol. 68, no. 6, pp. 2736-2748, 2021.
  • [23] H. Kennedy, R. Bodnar, T. Lee, and W. Redman-White, “A self-tuning resonant-inductive-link transmit driver using quadrature symmetric delay trimmable phase-switched fractional capacitance,” IEEE Journal of Solid-State Circuits, vol. 53, no. 6, pp. 1694-1706, 2018.
  • [24] L. Pereira, U. Resende, S. Gonçalves, M.M. Afonso, C. Vollaire, and P. Pereira, “Design of a resonant wireless power transmission system using printed inductors,” in ISEF, 2015.
  • [25] K.N. Mude and K. Aditya, “Comprehensive review and analysis of two-element resonant compensation topologies for wireless inductive power transfer systems,” Chinese Journal of Electrical Engineering, vol. 5, no. 2, pp. 14-31, 2019.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-43a1b262-f4b3-4354-9b80-e2cea3690b3e
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