DESIGN AND MANUFACTURE A MODEL CONVERTING THE KINETIC ENERGY COLLECTED FROM THE MOVEMENT OF VEHICLES INTO ELECTRICITY

Ngày nhận bài: 14-10-2024

Ngày duyệt đăng: 30-05-2022

Ngày xuất bản: 29-05-2024

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Dieu, N., Duong, N., & Huy, B. (2024). DESIGN AND MANUFACTURE A MODEL CONVERTING THE KINETIC ENERGY COLLECTED FROM THE MOVEMENT OF VEHICLES INTO ELECTRICITY. Tạp Chí Khoa học Nông nghiệp Việt Nam, 20(6), 757–768. https://doi.org/10.1234/2c2fdq38

DESIGN AND MANUFACTURE A MODEL CONVERTING THE KINETIC ENERGY COLLECTED FROM THE MOVEMENT OF VEHICLES INTO ELECTRICITY

Nguyen Van Dieu (*) 1, 2 , Ngo Tri Duong 1 , Bui Quoc Huy 1

  • 1 Faculty of Engineering, Vietnam National University of Agriculture, Hanoi, Vietnam
  • 2 Khoa Cơ - Điện, Học viện Nông nghiệp Việt Nam
  • Từ khóa

    Speed bump, energy harvesting, kinetic energy, renewable energy

    Tóm tắt


    This paper proposed a novel kinetic energy harvesting model that is installed under the speed bumps to harvest power wasted by vehicles when they pass over the speed bumps. The model consists of three main parts: drivetrain-pump-storage system, generator module, and control module. Acting as an energy input, the drivetrain-pump system harvests kinetic energy to produce compressed air. The storage system then stores this air so it is ready to discharge to the generator system. When compressed air is discharged into the generator module, this module will generate electrical energy which can be charged to a battery. The control module can automatically monitor and adjust the amount of compressed air and power in the battery. Tests have shown that the system is capable of storing a compressed air volume below 50 psi. This energy allows generating 14.8VDC power to charge the 12VDC battery. The initial results allow further research for a new energy source in the future.

    Tài liệu tham khảo

    Ahmad S.A. & Masood B. (2014). Power scavenging from moving vehicles on road. International Journal of Innovation and Applied Studies.9(4): 1428.

    Azam A., Ahmed A., Hayat N., Ali S., Khan A.S., Murtaza G. & Aslam T. (2020). Design, fabrication, modelling and analyses of a movable speed bump-based mechanical energy harvester (MEH) for application on road. Energy.214: 118894.

    Chen N., Wei T. & Jung H.J. (2017). A self-start power management circuit for the piezoelectric energy harvester of speed bump. 2017 IEEE 60th International Midwest Symposium on Circuits and Systems (MWSCAS). IEEE. 333-336.

    Gholikhani M., Nasouri R., Tahami S.A., Legette S., Dessouky S. & Montoya A. (2019). Harvesting kinetic energy from roadway pavement through an electromagnetic speed bump. Applied Energy.250: 503-511.

    Hyun J. H., Chen N. & Ha D.S. (2018). Energy Harvesting Circuit for Road Speed Bumps Using a Piezoelectric Cantilever. IECON 2018-44th Annual Conference of the IEEE Industrial Electronics Society. IEEE. 4219-4223.

    Khorshid E., Alkalby F. & Kamal H. (2007). Measurement of whole-body vibration exposure from speed control humps. Journal of sound and vibration.304(3-5): 640-659.

    Li Z., Zuo L., Kuang J. & Luhrs G. (2012). Energy-harvesting shock absorber with a mechanical motion rectifier. Smart materials and structures.22(2): 025008.

    Todaria P., Wang L., Pandey A., O'connor J., Mcavoy D., Harrigan T., Chernow B. & Zuo L. (2015). Design, modeling and test of a novel speed bump energy harvester. Sensors and Smart Structures Technologies for Civil, Mechanical, and Aerospace Systems 2015. International Society for Optics and Photonics. 943506.

    Wang L., Todaria P., Pandey A., O'connor J., Chernow B. & Zuo L. (2016). An electromagnetic speed bump energy harvester and its interactions with vehicles. IEEE/ASME Transactions on Mechatronics.21(4): 1985-1994.