Improvement of Power in Piezoelectric Energy Harvesting Systems Using the Synchronized Switch Harvesting Inductor (SSHI) Technique

M. Ihsanul Fikri, Ahmad Raditya Cahya Baswara

Abstract


Energy needs have always been a problem that must be solved, the utilization of fossil energy sources is a solution that is widely used, but this energy source can run out at any time. The idea to create an energy producer that utilizes mechanical energy from the motion of objects, creating a tool in the form of a floor that can produce electrical energy by utilizing piezoelectricity as a harvester with SSHI technique as an optimizer. Piezoelectric is a sensor that can react when given vibration or pressure. The energy harvesting floor is made using piezoelectrics arranged in series of 16 pieces, this harvesting tool is assisted by standard energy harvesting (SEH) and syncronized swiych harvesting inductor (SSHI) techniques this technique combines several components namely, MOSFET IRF530N, Inductor, reactifier, capacitor. This floor can produce 5V AC energy in a few steps, and produce 2V - 2.5V DC after entering the rectifier, after being given a load in the form of a capacitor and LED the voltage generated per beat is 0.03V - 0.06V, this study compares the harvesting circuit using SSHI and not using SSHI, getting the conclusion SSHI as a harvesting stabilizer dampens the resulting power surge.


Keywords


Energy; Piezoelektrik; SSHI; Arduino; Harvesting

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References


R. R. Moussa, W. S. Ismaeel, and M. M. Solban, “Energy generation in public buildings using piezoelectric flooring tiles; A case study of a metro station,” Sustainable Cities and Society, vol. 77, p. 103555, 2022.

X. Jiang, H. Shi, F. Cao, Z. Zhao, M. Li, and Z. Chen, “System analysis and experimental investigation of a pendulum-based wave energy converter,” Ocean Engineering, vol. 277, p. 114300, 2023.

N. Chuvaldin, B. Belogurov, A. Rolich and I. Motajlenko, "Study of energy harvesting using high-frequency emitting for IoT," 2019 International Seminar on Electron Devices Design and Production (SED), pp. 1-6, 2019.

C. Bianchini, A. Torreggiani, D. David and A. Bellini, "Design of Motor/Generator for Flywheel Batteries," in IEEE Transactions on Industrial Electronics, vol. 68, no. 10, pp. 9675-9684, 2021.

N. Kaynar, O. Sadik, and E. Boichuk, “Technology in early childhood education: Electronic books for improving students’ literacy skills,” TechTrends, vol. 64, no. 6, pp. 911-921, 2020.

I. Ansori and W. S. Abioso, “Energy Utilization of Kinetic Paving Technology,” In IOP Conference Series: Materials Science and Engineering, vol. 879, no. 1, p. 012152, 2020.

T. Li and P. S. Lee, “Piezoelectric energy harvesting technology: from materials, structures, to applications,” Small Structures, vol. 3, no. 3, p. 2100128, 2022.

D. Xu, Y. Liu, J. Liu, and L. Wang, “A four-foot walking-type stepping piezoelektrik actuator: Driving principle, simulation and experimental evaluation,” Smart Materials and Structures, vol. 27, no. 11, 2018.

A. J. Williams, M. F. Torquato, I. M. Cameron, A. A. Fahmy and J. Sienz, "Survey of Energy Harvesting Technologies for Wireless Sensor Networks," in IEEE Access, vol. 9, pp. 77493-77510, 2021.

X. Guo, S. Du, N. Diao, C. Hua and F. Blaabjerg, "Three-Dimensional Space Vector Modulation for Four-Leg Current-Source Inverters," in IEEE Transactions on Power Electronics, vol. 38, no. 10, pp. 13122-13132, 2023.

A. Naqvi, A. Ali, W. A. Altabey, and S. A. Kouritem, “Energy harvesting from fluid flow using piezoelectric materials: a review,” Energies, vol. 15, no. 19, p. 7424, 2022.

S. Gao, Y. Lin and J. Zhu, "The Effect of Mounting Structure and Piezoelectric Pressure Probe Sensor Incident Angle on the Free-Field Measurement," in IEEE Sensors Journal, vol. 19, no. 17, pp. 7226-7233, 2019.

E. Candidus U., O. Crescent O. and J. M. Ukwejeh, "Solar-powered Five Level Output Voltage of DC-TO-AC Converter Using Simplified Capacitor Voltage Controlled Scheme (SCVCS)," 2019 IEEE PES/IAS PowerAfrica, pp. 1-6, 2019.

N. Qi, K. Dai, X. Wang and Z. You, "Adaptive Capacitor Charging Circuit With Simplified Configuration for Efficient Piezoelectric Energy Harvesting," in IEEE Transactions on Power Electronics, vol. 37, no. 9, pp. 10267-10280, 2022.

A. F. Mahmood, K. A. Ahmed, and H. A. Mahmood, “Design and implementation of a microcontroller training kit for blend learning,” Computer Applications in Engineering Education, vol. 30, no. 4, pp. 1236-1247, 2022.

Y. Chen, et al., “Development and analysis of a novel PVDF membrane with higher content of ? phase,” International Journal of Polymer Analysis and Characterization, vol. 24, no. 8, pp. 684-695, 2019.

S. U. Ahmed et al., "Energy Harvesting through Floor Tiles," 2019 International Conference on Innovative Computing (ICIC), pp. 1-6, 2019.

Y. Liu et al., “Conductive elastic sponge-based triboelectric nanogenerator (TENG) for effective random mechanical energy harvesting and ammonia sensing,” Nano Energy, vol. 79, p. 105422, 2021.

F. R. Rahman, M. Wirandi, M. Firyal, R. Rahmayanti, and M. R. Septiawan, “Design and development of kinetic energy conversion equipment from foot step into electrical energy,” In AIP Conference Proceedings, vol. 2630, no. 1, 2023.

G. K. Deshwal, N. R. Panjagari, and T. Alam, “An overview of paper and paper based food packaging materials: health safety and environmental concerns,” Journal of food science and technology, vol. 56, pp. 4391-4403, 2019.

A. Mahajan, A. Goel, and A. Verma, “A review on energy harvesting based piezoelectric system,” Materials Today: Proceedings, vol. 43, pp. 65-73, 2021.

P. Maharjan, T. Bhatta, X. Hui, G. B. Pradhan, H. Song, K. Shrestha, and J. Y. Park, “Brachistochrone bowl?inspired hybrid nanogenerator integrated with physio?electrochemical multisensors for self?sustainable smart pool monitoring systems,” Advanced Energy Materials, vol. 13, no. 14, p. 2203849, 2023.

S. M. Fatemi, M. S. Shadlu and A. Talebkhah, "Comparison of Three-Point P&O and Hill Climbing Methods for Maximum Power Point Tracking in PV Systems," 2019 10th International Power Electronics, Drive Systems and Technologies Conference (PEDSTC), pp. 764-768, 2019.

T. Li and P. S. Lee, “Piezoelectric energy harvesting technology: from materials, structures, to applications,” Small Structures, vol. 3, no. 3, p. 2100128, 2022.

N. Wu, B. Bao, and Q. Wang, “Review on engineering structural designs for efficient piezoelectric energy harvesting to obtain high power output,” Engineering Structures, vol. 235, p. 112068, 2021.




DOI: https://doi.org/10.31763/simple.v6i1.103

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Signal and Image Processing Letters
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