Automatic Cableless Charging Station Design Using Magnetic Clutch Resonance Method

Authors

  • Nanda Adiva Yusman Universitas Pertamina, Indonesia
  • Wahyu Agung Pramudito Universitas Pertamina, Indonesia
  • Soni Prayogi Universitas Pertamina, Indonesia

DOI:

https://doi.org/10.33379/gtech.v8i3.4378

Keywords:

Daya Nirkabel, Resonansi Magnetik, Stasiun Pengisian Otomatis, Transfer Energi

Abstract

This research aims to design an automatic wireless charging station using the magnetic coupling resonance method. This method was chosen because of its ability to transfer energy efficiently over a certain distance without requiring a physical connection. This design involves main components such as transmitter and receiver coils, as well as supporting electronic circuits which function to regulate the resonant frequency for maximum energy transfer. This charging station prototype was tested to charge electronic devices such as smartphones. Test results show that this system is capable of transferring power with high efficiency over a distance of up to 20 cm, with a power transfer efficiency reaching 50%. System security is also considered by implementing protection against overheating and foreign object detection. Our results show that automated wireless charging stations can be a practical and efficient solution for everyday electronic device charging needs. Further development is recommended to increase the range and efficiency of power transfer as well as integration with various types of electronic devices

References

Campi, T., Cruciani, S., & Feliziani, M. (2018). Wireless Power Transfer Technology Applied to an Autonomous Electric UAV with a Small Secondary Coil. Energies, 11(2), Article 2. https://doi.org/10.3390/en11020352

Campi, T., Cruciani, S., Maradei, F., & Feliziani, M. (2017). Near-Field Reduction in a Wireless Power Transfer System Using LCC Compensation. IEEE Transactions on Electromagnetic Compatibility, 59(2), 686–694. https://doi.org/10.1109/TEMC.2016.2641383

Covic, G. A., & Boys, J. T. (2013). Inductive Power Transfer. Proceedings of the IEEE, 101(6), 1276–1289. https://doi.org/10.1109/JPROC.2013.2244536

Erlangga, A. P. M., Dinatha, K. S. K., Nainggolan, F. E., & Prayogi, S. (2023). Prototipe Otomatisasi dan Pemantauan Sistem Hidroponik Berbasis IoT dengan Pemanfaatan Solar Panel Sebagai Sumber Energi. G-Tech: Jurnal Teknologi Terapan, 7(4), 1367–1377. https://doi.org/10.33379/gtech.v7i4.3143

Ghufron, S., & Prayogi, S. (2023). Cooling System in Machine Operation at Gas Engine Power Plant at PT Multidaya Prima Elektrindo. Journal of Artificial Intelligence and Digital Business (RIGGS), 1(2), Article 2. https://doi.org/10.31004/riggs.v1i2.21

Huang, Z., Xu, X., Ni, J., Zhu, H., & Wang, C. (2019). Multimodal Representation Learning for Recommendation in Internet of Things. IEEE Internet of Things Journal, 6(6), 10675–10685. https://doi.org/10.1109/JIOT.2019.2940709

Jawad, A. M., Jawad, H. M., Nordin, R., Gharghan, S. K., Abdullah, N. F., & Abu-Alshaeer, M. J. (2019). Wireless Power Transfer with Magnetic Resonator Coupling and Sleep/Active Strategy for a Drone Charging Station in Smart Agriculture. IEEE Access, 7, 139839–139851. https://doi.org/10.1109/ACCESS.2019.2943120

Jeong, S. Y., Kwak, H. G., Jang, G. C., Choi, S. Y., & Rim, C. T. (2018). Dual-Purpose Nonoverlapping Coil Sets as Metal Object and Vehicle Position Detections for Wireless Stationary EV Chargers. IEEE Transactions on Power Electronics, 33(9), 7387–7397. https://doi.org/10.1109/TPEL.2017.2765521

Kan, T., Mai, R., Mercier, P. P., & Mi, C. C. (2018). Design and Analysis of a Three-Phase Wireless Charging System for Lightweight Autonomous Underwater Vehicles. IEEE Transactions on Power Electronics, 33(8), 6622–6632. https://doi.org/10.1109/TPEL.2017.2757015

Kang, S. H., Choi, J. H., Harackiewicz, F. J., & Jung, C. W. (2016). Magnetic Resonant Three-Coil WPT System Between Off/In-Body for Remote Energy Harvest. IEEE Microwave and Wireless Components Letters, 26(9), 741–743. https://doi.org/10.1109/LMWC.2016.2597194

Liu, D., Hu, H., & Georgakopoulos, S. V. (2017). Misalignment Sensitivity of Strongly Coupled Wireless Power Transfer Systems. IEEE Transactions on Power Electronics, 32(7), 5509–5519. https://doi.org/10.1109/TPEL.2016.2605698

Liu, F., Yang, Y., Jiang, D., Ruan, X., & Chen, X. (2017). Modeling and Optimization of Magnetically Coupled Resonant Wireless Power Transfer System With Varying Spatial Scales. IEEE Transactions on Power Electronics, 32(4), 3240–3250. https://doi.org/10.1109/TPEL.2016.2581840

Liu, X., Zhu, R., Jalaian, B., & Sun, Y. (2015). Dynamic Spectrum Access Algorithm Based on Game Theory in Cognitive Radio Networks. Mobile Networks and Applications, 20(6), 817–827. https://doi.org/10.1007/s11036-015-0623-2

Mardiana, N. A., & Naisali, H. (2023). Exploring the Rich Heritage of Indonesian Cuisine through the Versatile Peanut Ingredient: A Review. G-Tech: Jurnal Teknologi Terapan, 7(4), 1424–1432. https://doi.org/10.33379/gtech.v7i4.3165

Moraes, L., Carmo, L. C., Campos, R. F., Jucá, M. A., Moreira, L. S., Carvalho, J. P., Texeira, A. M., Silveira, D. D., N. Coelho, T. V., Luis, A., Marcato, M., & Dos Santos, A. B. (2017). Autonomous Quadrotor for accurate positioning. IEEE Aerospace and Electronic Systems Magazine, 32(3), 58–62. https://doi.org/10.1109/MAES.2017.160038

Muhammad, M., Ragadita, B., Prayogi, S., & Saminan, S. (2023). Design of an optical rotation value measurement tool using an arduino device. Jurnal Pijar Mipa, 18(5), Article 5. https://doi.org/10.29303/jpm.v18i5.4811

Pinon Pereira Dias, J. V., & Miyatake, M. (2018). Increase in Robustness against Effects of Coil Misalignment on Electrical Parameters Using Magnetic Material Layer in Planar Coils of Wireless Power Transfer Transformer. Energies, 11(8), Article 8. https://doi.org/10.3390/en11081970

Prayogi, S., Baqiya, M. A., Cahyono, Y., & Darminto. (2019). Optical Transmission of p-Type a-Si:H Thin Film Deposited by PECVD on ITO-Coated Glass. Materials Science Forum, 966, 72–76. https://doi.org/10.4028/www.scientific.net/MSF.966.72

Prayogi, S., Cahyono, Y., Hamdani, D., & Darminto. (2022). Effect of active layer thickness on the performance of amorphous hydrogenated silicon solar cells. Engineering and Applied Science Research, 49(2), Article 2.

Prayogi, S., Silviana, F., & Saminan, S. (2023). Resistor and Capacitor Time Constant Measuring Instrument Using Arduino UNO. Jurnal Ilmiah Pendidikan Fisika Al-Biruni, 12(1), Article 1. https://doi.org/10.24042/jipfalbiruni.v12i1.15323

Prayogi, S., Silviana, F., & Zainuddin, Z. (2023). Peningkatan Performa Sel Surya Dengan Sistem Peredam Panas. Jambura Journal of Electrical and Electronics Engineering, 5(2), Article 2. https://doi.org/10.37905/jjeee.v5i2.18802

Ramadhan, R. A., Kakke, G. R., Fajar, I. N., & Prayogi, S. (2023). Smart Trash Bin Berbasis Internet Of Things Menggunakan Suplai dari Panel Surya. G-Tech: Jurnal Teknologi Terapan, 7(3), 1149–1158. https://doi.org/10.33379/gtech.v7i3.2777

Rista, R. D., & Wiratama, J. (2023). The Development of Web-Based Application For Reporting Status Component at Aircraft Maintenance, Repair, and Overhaul (MRO) Industry. G-Tech: Jurnal Teknologi Terapan, 7(3), 1013–1025. https://doi.org/10.33379/gtech.v7i3.2652

Sallan, J., Villa, J. L., Llombart, A., & Sanz, J. Fco. (2009). Optimal Design of ICPT Systems Applied to Electric Vehicle Battery Charge. IEEE Transactions on Industrial Electronics, 56(6), 2140–2149. https://doi.org/10.1109/TIE.2009.2015359

Silviana, F., & Prayogi, S. (2023). An Easy-to-Use Magnetic Dynamometer for Teaching Newton’s Third Law. Jurnal Pendidikan Fisika Dan Teknologi, 9(1), Article 1. https://doi.org/10.29303/jpft.v9i1.4810

Tandiono, S. M., & Sanjaya, S. A. (2024). Machine Learning Approach of Obesity Level Classification: A Systematic Literature Review of Methods and Factors. G-Tech: Jurnal Teknologi Terapan, 8(1), 196–208. https://doi.org/10.33379/gtech.v8i1.3604

Yan, Y., Shi, W., & Zhang, X. (2020). Design of UAV wireless power transmission system based on coupling coil structure optimization. EURASIP Journal on Wireless Communications and Networking, 2020(1), 67. https://doi.org/10.1186/s13638-020-01679-4

Published

2024-07-02

How to Cite

Automatic Cableless Charging Station Design Using Magnetic Clutch Resonance Method. (2024). G-Tech: Jurnal Teknologi Terapan, 8(3), 1484-1493. https://doi.org/10.33379/gtech.v8i3.4378

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