Piezoelectric Energy Harvesting Using A 10×10 Sensor Matrix with Integrated Circuit Design for Pressure Control

Year : 2024 | Volume : 02 | Issue : 02 | Page : 47 53
    By

    Siddharth Borghe,

  • Kapil Sangameshwar,

  • Dhruvesh kamble,

  • Santosh Kandhare,

  1. Professor, Department of Electronics & Telecommunication Engineering, Vishwakarma Institute of Technology, Pune, Maharashtra, India
  2. Student, Department of Electronics & Telecommunication Engineering, Vishwakarma Institute of Technology, Pune, Maharashtra, India
  3. Student, Department of Electronics & Telecommunication Engineering, Vishwakarma Institute of Technology, Pune, Maharashtra, India
  4. Student, Department of Electronics & Telecommunication Engineering, Vishwakarma Institute of Technology, Pune, Maharashtra, India

Abstract

This project aims to create a system that generates energy using piezoelectric technology, designed as a rectangular tile platform. The platform has two layers of sensors arranged in a 10 × 10 grid, connected in a mix of series and parallel setups. The top layer acts as a surface for external forces, like footsteps, while springs connect the layers to control pressure and maximize energy generation. A rectifier ensures the energy output is stable, and capacitors store the collected energy for later use. Tests show the system is effective at turning pressure into usable energy, with the springs helping it reset after each use. This study primarily aims to evaluate how viable and efficient piezoelectric energy harvesting systems are as a consistent power source for low-power electronic devices. It also seeks to expand knowledge about the environmental sustainability and impact of these systems, supporting the broader goal of advancing renewable energy technologies for a more sustainable future. This innovative design is scalable and sustainable, making it ideal for powering small electronic devices and promoting eco-friendly energy solutions.

Keywords: Piezoelectric sensors, full-wave rectifier, rechargeable battery, load

[This article belongs to International Journal of VLSI Circuit Design & Technology ]

How to cite this article:
Siddharth Borghe, Kapil Sangameshwar, Dhruvesh kamble, Santosh Kandhare. Piezoelectric Energy Harvesting Using A 10×10 Sensor Matrix with Integrated Circuit Design for Pressure Control. International Journal of VLSI Circuit Design & Technology. 2024; 02(02):47-53.
How to cite this URL:
Siddharth Borghe, Kapil Sangameshwar, Dhruvesh kamble, Santosh Kandhare. Piezoelectric Energy Harvesting Using A 10×10 Sensor Matrix with Integrated Circuit Design for Pressure Control. International Journal of VLSI Circuit Design & Technology. 2024; 02(02):47-53. Available from: https://journals.stmjournals.com/ijvcdt/article=2024/view=190797


Browse Figures

References

  1. Sathisha D. A novel method for electricity generation from footsteps using piezoelectric transducers. Turk J Computer Math Educ. 2021; 12 (2): 810–81
  2. Adhikari J, Kumar R, Jain Modeling and parametric analysis for performance improvement in piezoelectric energy harvesting tile. Ferroelectrics. 2021; 573 (1): 201–213.
  3. Zhao B, Qian F, Hatfield A, Zuo L, Xu TB. A review of piezoelectric footwear energy harvesters: principles, methods, and applications. Sensors. 2023; 23 (13):
  4. Gothwal P, Kumar A, Rathore D, Mukherji R, Vetriselvi T, Anandan S. Response surface methodology analysis of energy harvesting system over pathway tiles. Materials. 2023; 16 (3):
  5. Thainiramit P, Yingyong P, Isarakorn D. Impact-driven energy harvesting: piezoelectric versus triboelectric energy harvesters. Sensors. 2020; 20 (20):
  6. Go JC, Remolino AK, Sanchez JM, Paz KE. Harvesting energy through piezoelectric tiles: a comparative study of wood, porcelain, and ceramic tiles. EDUCATUM J Sci Math Technol. 2023; 10 (1): 1–
  7. Jin CC, Liu DM, Zhang LX. An emerging family of piezocatalysts: 2D piezoelectric materials. 2023; 19 (44): 2303586.
  8. Mukul HR, Rahman S, Morshed MM, Roman KA. Energy harvesting system from footsteps using piezoelectric sensors. Am J Eng Nat Sci. 2018; 1 (3): 11–14.
  9. Gupta S, Kumar M, Singh G, Chanda A. Development of a novel footwear-based power harvesting system. e-Prime Adv Electric Eng Electron Energy. 2023; 3: 100115.
  10. Petrecca G. Energy Conversion and Management. Cham, Switzerland: Springer; 2014. pp. 101–103.
  11. Zhong X, Wang H, Chen L, Guan M. Design and comparative study of a small-stroke energy harvesting floor based on a multi-layer piezoelectric beam structure. Micromachines. 2022; 13 (5): 736.
  12. Pham TH, Bui TD, Dao TT. A high-reliability piezoelectric tile transducer for converting bridge vibration to electrical energy for smart transportation. Micromachines. 2023; 14 (5): 1058.

Regular Issue Subscription Original Research
Volume 02
Issue 02
Received 23/11/2024
Accepted 12/12/2024
Published 24/12/2024


Login


My IP

PlumX Metrics