СХЕМОТЕХНИЧЕСКИЕ И КОНСТРУКТИВНЫЕ РЕШЕНИЯ ДЛЯ БЕСПРОВОДНОЙ СИСТЕМЫ ПЕРЕДАЧИ ЭНЕРГИИ НА ОСНОВЕ СИНХРОННОГО ВЫПРЯМИТЕЛЯ
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Научный журнал Моделирование, оптимизация и информационные технологииThe scientific journal Modeling, Optimization and Information Technology
Online media
issn 2310-6018

CIRCUIT DESIGNS AND ENGINEERING SOLUTIONS BASED ON SYNCHRONOUS RECTIFIER FOR WIRELESS ENERGY TRANSFER SYSTEM

idKrestovnikov K.D. idCherskikh Е.O. idShabanova А.R.

UDC 621.3.051
DOI: 10.26102/2310-6018/2019.27.4.018

  • Abstract
  • List of references
  • About authors

This paper presents circuit designs and engineering solutions for wireless energy transfer system (WETS), aimed to increase transmitted power and battery charger performance efficiency. This problem was solved by integration of the previously developed synchronous rectifier into the receiving part of the system. The distinctive feature of the WETS is its control system, required for adjustment of performance parameters, protection from inadmissible operating conditions and for human-machine interactions, using diagnostic message output onscreen. To maintain the required resonance frequency in the receiving part of the device a resonance self-oscillator. Application of identical components in both circuits allowed to obviate the need in additional subsystems for frequency tuning to achieve the required resonance value in the receiving part. To simplify the WETS fabrication and assembly process, identical materials for cases of receiving and transmitting parts were chosen, as well dimensions for coil socket in each part. Comparative study of WETS performance efficiency of WETS, where the receiving part is equipped with a rectifier on Schottky diodes and a synchronous rectifier. It was revealed, that previously developed circuit design of a synchronous rectifier allows to improve WETS efficiency by 5,38 % under load current of 4,5 A. Additionally, the following dependencies were obtained: synchronous rectifier efficiency depending on load current, energy transfer efficiency depending on transferred power and characteristic curves for different distances between the receiving and the transmitting part. The power transfer efficiency when using the presented WETS prototype was 76,47 % by transmitted power of 125 Wt. Transmitted power increase at least by 30 % compared to similar wireless battery charging devices shows, that the charging period duration is decreased.

1. Dubal P. Rezence: wireless charging standard based on magnetic resonance. International Journal of Advanced Research in Computer and Communication Engineering. 2015;4(12): 198-200.

2. Skaik T.F., AlWadiya B.O. Design of wireless power transfer system with tri-plet coil configuration based on magnetic resonance. Istanbul University-Journal of Electrical & Electronics Engineering. 2017;17(1):3193-3199.

3. Yu C., Lu R., Cui S., Su C. Research on resonance based wireless energy transfer device for small mobile equipments. 2011 International Conference on Electrical Machines and Systems. IEEE. 2011;:1-3.

4. Kim J. et al. Coil design and shielding methods for a magnetic resonant wireless power transfer system. Proceedings of the IEEE. 2013;101(6):1332-1342.

5. Sun Y., Ye Z.H. Power transfer efficiency analysis of U-WPT system. 2016 Asia-Pacific International Symposium on Electromagnetic Compatibility (APEMC). IEEE. 2016;1: 858- 861.

6. Beh T.C. et al. Basic study of improving efficiency of wireless power transfer via magnetic resonance coupling based on impedance matching. 2010 IEEE International Symposium on Industrial Electronics. IEEE. 2010;:2011-2016.

7. Pellitteri F. et al. Experimental test on a Contactless Power Transfer system. 2014 Ninth International Conference on Ecological Vehicles and Renewable Energies (EVER). IEEE, 2014:1-6.

8. Pellitteri I.F. et al. Wireless Charging Systems for Electric Vehicle Batteries. U. K. 2016.

9. Itoh J., Noguchi K., Orikawa K. System design of electric assisted bicycle using EDLCs and wireless charger / J. Itoh. 2014 International Power Electronics Conference (IPECHiroshima 2014-ECCE ASIA). IEEE, 2014;:2277-2284.

10. Low Z.N. et al. Design and test of a high-power high-efficiency loosely coupled planar wireless power transfer system. IEEE transactions on industrial electronics. 2008;56(5):1801-1812.

11. Krestovnikov K., Cherskikh E., Pavliuk N. Concept of a synchronous rectifier for wireless power transfer system. IEEE EUROCON 2019-18th International Conference on Smart Technologies. IEEE. 2019;:1-5.

12. Saveliev A.I., Krestovnikov K.D., Solenyj S.V. Razrabotka besprovodnogo zaryadnogo ustrojstva dlya mobil'noj robototekhnicheskoj platform. V sbornike: Intellektual'nye Energosistemy. Materialy V Mezhdunarodnogo molodezhnogo foruma. 2017: 197-201.

13. Krestovnikov K.D., Solenyj S.V. Sistema besprovodnoj zaryadki mobil'nykh robotov. SUAI, International Conference on Electromechanics and Robotics «Zavalishin's Readings» (ER(ZR)-2017), youth section. 2017;:71-76.

14. ATmega328P [DATASHEET], Rev.: 7810D-AVR-01/15. Atmel Corporation, 2015.

15. ACS712 D. Fully Integrated, Hall Effect-Based Linear Current Sensor IC with 2.1 kVRMS Isolation and a Low-Resistance Current Conductor. 2006.

16. Meleshin V. I. Tranzistornaya preobrazovatel'naya tekhnika. Monograph. Tekhnosfera, 2005.

17. General Technical Information about film capacitors. Access mode: https://www.vishay.com/docs/26033/gentechinfofilm.pdf. (Date of treatment July 9 2019).

Krestovnikov Konstantin Dmitrievich

Email: open56it@gmail.com

ORCID |

St. Petersburg Institute for Informatics and Automation of the Russian Academy of Sciences
St. Petersburg State University of Aerospace Instrumentation

St. Petersburg, Russian Federation

Cherskikh Еkaterina Olegovna

Email: katy0419@mail.ru

ORCID |

Junior Researcher

St. Petersburg, Russian Federation

Shabanova Аleksandra Romanovna

Email: shabanova_ar@mail.ru

ORCID |


St. Petersburg, Russian Federation

Keywords: wireless energy transfer, circuit design, battery charging device, synchronous rectifier, resonance self-oscillator, schottky diode

For citation: Krestovnikov K.D. Cherskikh Е.O. Shabanova А.R. CIRCUIT DESIGNS AND ENGINEERING SOLUTIONS BASED ON SYNCHRONOUS RECTIFIER FOR WIRELESS ENERGY TRANSFER SYSTEM. Modeling, Optimization and Information Technology. 2019;7(4). Available from: https://moit.vivt.ru/wp-content/uploads/2019/11/KrestovknikovSoavtori_4_19_1.pdf DOI: 10.26102/2310-6018/2019.27.4.018 (In Russ).

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