Affiliation:
1. ADIYAMAN ÜNİVERSİTESİ, MÜHENDİSLİK FAKÜLTESİ
Abstract
In this study, a series compensated WPT system is presented for low power DC load applications. Series LC resonant circuits are applied for both transmitter and receiver sides of WPT system to reduce the impedance at a specified operation frequency, and thus, ensure low power losses. The operation frequency is chosen as 109 kHz for the series compensated WPT system. Then, the series resonant LC filter is designed according to the operation frequency and WPT rating values. In addition, the power electronics systems with their controller and operation principle are demonstrated in depth. To investigate the performance of the proposed system, a 100 W series compensated WPT model is designed and constructed in Matlab/Simulink enviroment. Different simulation results are provided to illustrate the performance of the proposed WPT model. The simulation results show the stable operation of the proposed system under the designed system parameters.
Publisher
Bitlis Eren Universitesi Fen Bilimleri Dergisi
Reference19 articles.
1. [1] Z. Bi, L. Song, R. De Kleine, C. Mi, and G. Keoleian, "Plug-in vs. wireless charging: Life cycle energy and greenhouse gas emissions for an electric bus system," Applied Energy, vol. 146, 05/15 2015.
2. [2] P. Lazzeroni, V. Cirimele, and A. Canova, "Economic and environmental sustainability of Dynamic Wireless Power Transfer for electric vehicles supporting reduction of local air pollutant emissions," Renewable and Sustainable Energy Reviews, vol. 138, p. 110537, 2021/03/01/ 2021.
3. [3] S. Chhawchharia, S. K. Sahoo, M. Balamurugan, S. Sukchai, and F. Yanine, "Investigation of wireless power transfer applications with a focus on renewable energy," Renewable and Sustainable Energy Reviews, vol. 91, pp. 888-902, 2018/08/01/ 2018.
4. [4] T. Kan, T. Nguyen, J. Wjite, R. Malhan, and C. Mi, "A New Integration Method for an Electric Vehicle Wireless Charging System Using LCC Compensation Topology," IEEE Transactions on Power Electronics, vol. 32, pp. 1-1, 01/01 2016.
5. [5] H. Pan, L. Qi, X. Zhang, Z. Zhang, W. Salman, Y. Yuan, et al., "A portable renewable solar energy-powered cooling system based on wireless power transfer for a vehicle cabin," Applied Energy, vol. 195, pp. 334-343, 2017/06/01/ 2017.