IMPLEMENTATION OF WIRELESS CHARGER FOR MOBILE PHONE BASED ON SOLAR ENERGY

Authors

  • Talit Jumphoo School of Telecommunication Engineering, Suranaree University of Technology, Muang, Nakhon Ratchasima, Thailand.
  • Peerapong Uthansakul School of Telecommunication Engineering, Suranaree University of Technology, Muang, Nakhon Ratchasima, Thailand.
  • Hoi- Shun Lui School of Information Technology and Electrical Engineering, The University of Queensland, Brisbane St Lucia, QLD, 4072, Australia.

Keywords:

Wireless charger, solar energy, transformer, magnetic flux

Abstract

Recently, technology that can promise to energize devices without a wired connection has caught the attention of researchers around the world. Moreover, if this technology can provide the ability to harvest energy from the environment, then it can provide a long-life battery for many important applications and permit the deployment of self-energized devices. This paper presents the use of solar energy to chargea mobile phone with a wireless connection. The design and implementation of the proposed system have been undertaken. The measured results indicate that the proposed system can be used as a wireless charger powered by solar energy. The prototype sourced by solar energy has been tested outdoors from 10:00-17:00 for 3 days. The results show that light intensity plays the main role in the charging time of the wireless charger.

References

Boonruang, A., Ngernchuklin, P., Daungdaw, S., and Eamchotchawalit, C. (2012). Influence of milling method on the electrical properties of 0.65PMN-0.35PT ceramics. Suranaree J. Sci. Technol., 19(4):251-257.

Ferro Solutions (2004). VEH-360: Evaluation Power System Specifications. Elsevier, NY, 605p.

Grover, F.W. (1962). Inductance Calculations: Working Formulas and Tables. Dover Publications, Inc., Mineola, NY, USA, 304p.

Kansal, A. and Srivastava, M. (2003). An environmental energy harvesting framework for sensor networks. Proceedings of the ACM International Symposium on Low Power Electronics and Design; August 25-27, 2003; Seoul, South Korea, p. 481-486.

Kansal, A., Potter, D., and Srivastava, M. (2004). Performance aware tasking for environmentally powered sensor networks. Proceedings of the Joint ACM International Conference on Measurement and Modeling of Computer Systems; June 12-16, 2004; New York, NY, USA, p. 223-234.

Paradiso, J.A. and Starner, T. (2007) Energy scavenging for mobile and wireless electronics. IEEE Pervas. Comput., 4(1):18-27.

Park, C. and Chou, P.H. (2004). Power utility maximization for multiple-supply systems by a load-matching switch. Proceedings of the International Symposium on Low Power Electronics and Design; August 9-11, 2004; Newport Beach, CA, USA, p. 168-173.

Park, G. (2005) Overview of energy harvesting systems (for low-power electronics). Presentation to the Los Alamos National Laboratory Engineering Institute Workshop: Energy Harvesting for Embedded SHM Sensing Systems. Engineering Institute, Los Alamos National Laboratory, Los Alamos, NM, USA, p 1-11.

Phungsripheng, S., Sanorpim, S., and Wasanapiarnpong, T. (2013). Effect of nitrogen doping on photovoltaic property of lead lanthanum zirconatetitanate ferroelectric ceramics. Suranaree J. Sci. Technol., 20(2):109-116.

Roundy, S. (2003). Energy scavenging for wireless sensor nodes with a focus on vibration-to-electricity conversion, [Ph.D. thesis]. Department of Mechanical Engineering, University of California, Berkeley, CA, USA, 287p.

Tigunta, S., Pisitpipathsin, N., Eitssayeam, S., Rujijanagul, G., Tunkasiri, T., and Pengpat, K. (2013). Effects of BZT addition on physical and electrical properties of calcium phosphate bioglass. Suranaree J. Sci. Technol., 20(3):197-203.

Voigt, T., Ritter, H., and Schiller, J. (2003). Utilizing solar power in wireless sensor networks. Proceedings of the 28th Annual IEEE Conference on Local Computer Networks; October 20-24, 2003; Seoul, South Korea, p. 1-5.

Downloads

Published

2026-08-28

How to Cite

Jumphoo, T., Uthansakul, P., & Shun Lui, H.-. (2026). IMPLEMENTATION OF WIRELESS CHARGER FOR MOBILE PHONE BASED ON SOLAR ENERGY. Suranaree Journal of Science and Technology, 21(4), 283–291. retrieved from https://ph04.tci-thaijo.org/index.php/SUJST/article/view/13964

Issue

Section

Research Article