An In-Depth Look into Vibration Energy Harvesting: Modeling and Implementation

Authors

  • Rishi Sikka SOEIT, Sanskriti University, Mathura, Uttar Pradesh, India Author
  • Manoj Ojha SOEIT, Sanskriti University, Mathura, Uttar Pradesh, India Author

DOI:

https://doi.org/10.55524/

Keywords:

Energy Harvesting, Energy Conversion Mechanism, Nonlinearity, Piezo Electric, Vibration

Abstract

This article gives a present status of-the craftsmanship outline of a hot subject in the writing, to be  specific vibration-based energy collecting procedures, which  incorporates hypothesis, displaying techniques, and  executions of piezoelectric, electromagnetic, and  electrostatic methodologies. The energy gathering technique  dependent on vibrations has been a unique space of  examination interest as of late, fully intent on diminishing  the requirement for outside power sources and upkeep for  electric gadgets, for example, remote sensor organizations.  The power yield execution of current energy reaping  strategies is seriously affected by the reverberation  frequencies of natural vibrations, which are regularly  eccentric and wideband. Analysts have zeroed in on making  effective energy collectors by taking on clever materials and  improving reaping gadgets to resolve this issue. In particular,  different sorts of energy collectors have been created in view  of nonlinear highlights with the goal that the recurrence data  transfer capacity for effective energy reaping of energy  gatherers might be extended. This article covers three of the  main vibration-to-power change systems in the writing, just  as their plan hypothesis or procedures and potential  applications. The energy transformation productivity of  different change strategies is likewise summed up as one of  the vital factors to assess the power yield execution. At last,  the troublesome issues dependent on current strategies and  future energy gathering prerequisites are tended to. 

Downloads

Download data is not yet available.

References

. Borno RT. Transpiration As a Mechanism for Mechanical and Electrical Energy Conversion. Thesis. 2008.

. Roundy S, Wright PK, Pister KSJ. Micro-electrostatic vibration-to-electricity converters. In: ASME International Mechanical Engineering Congress and Exposition, Proceedings. 2002.

. Chiu Y, Kuo CT, Chu YS. MEMS design and fabrication of an electrostatic vibration-to-electricity energy converter. In: Microsystem Technologies. 2007.

. Cottone F, Basset P, Guillemet R, Galayko D, Marty F, Bourouina T. Bistable multiple-mass elecrostatic generator for low-frequency vibration energy harvesting. In: Proceedings of the IEEE International Conference on Micro Electro Mechanical Systems (MEMS). 2013.

. Wang W, Yang T, Chen X, Yao X. Vibration energy harvesting using a piezoelectric circular diaphragm array. IEEE Trans Ultrason Ferroelectr Freq Control. 2012;

. Wang W, Yang T, Chen X, Yao X, Zhou Q. Vibration energy harvesting using piezoelectric circular diaphragm array. In: 2011 International Symposium on Applications of Ferroelectrics and 2011 International Symposium on Piezoresponse Force Microscopy and

Nanoscale Phenomena in Polar Materials, ISAF/PFM 2011. 2011.

. Wang W, Huang RJ, Huang CJ, Li LF. Energy harvester array using piezoelectric circular diaphragm for rail vibration. Acta Mech Sin Xuebao. 2014;

. Xiao Z, Yang TQ, Dong Y, Wang XC. Energy harvester array using piezoelectric circular diaphragm for broadband vibration. Appl Phys Lett. 2014;

. Ericka M, Vasic D, Costa F, Poulin G, Tliba S. Energy harvesting from vibration using a piezoelectric membrane. In: Journal De Physique IV : JP. 2005.

. Akcabay DT, Young YL. Hydroelastic response and energy harvesting potential of flexible piezoelectric beams in viscous flow. Phys Fluids. 2012;

Downloads

Published

2021-11-30

How to Cite

An In-Depth Look into Vibration Energy Harvesting: Modeling and Implementation . (2021). International Journal of Innovative Research in Computer Science & Technology, 9(6), 148–152. https://doi.org/10.55524/