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A comprehensive review on vibration energy harvesting: Modelling and realization

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Abstract
This paper presents a state-of-the-art review on a hot topic in the literature, i.e., vibration based energy harvesting techniques, including theory, modelling methods and the realizations of the piezoelectric, electromagnetic and electrostatic approaches. To minimize the requirement of external power source and maintenance for electric devices such as wireless sensor networks, the energy harvesting technique based on vibrations has been a dynamic field of studying interest over past years. One important limitation of existing energy harvesting techniques is that the power output performance is seriously subject to the resonant frequencies of ambient vibrations, which are often random and broadband. To solve this problem, researchers have concentrated on developing efficient energy harvesters by adopting new materials and optimising the harvesting devices. Particularly, among these approaches, different types of energy harvesters have been designed with consideration of nonlinear characteristics so that the frequency bandwidth for effective energy harvesting of energy harvesters can be broadened. This paper reviews three main and important vibration-to-electricity conversion mechanisms, their design theory or methods and potential applications in the literature. As one of important factors to estimate the power output performance, the energy conversion efficiency of different conversion mechanisms is also summarised. Finally, the challenging issues based on the existing methods and future requirement of energy harvesting are discussed.

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Citations
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Journal ArticleDOI

Connected Floating Balls Dynamics for Harvesting Energy of Sinusoidal Water Wave

TL;DR: In this article, a simple electrical generator is simply modeled based on the change of distance between connected balls from its initial value or Δl, which makes the system easier to be predicted, and the sum of all Δl as function of initial initial distance between balls or l is discussed.
Journal ArticleDOI

ACP-Based Energy-Efficient Schemes for Sustainable Intelligent Transportation Systems

TL;DR: In this article , the authors proposed energy-efficient and regenerative energy recovery schemes for sustainable intelligent transportation system using the Artificial societies, Computational experiments, Parallel Execution (ACP) framework.
Journal ArticleDOI

An ultra-low frequency ball-impacted potential-variable nonlinear energy harvester

TL;DR: In this article , an ultra-low frequency ball-impacted potential-variable nonlinear energy harvester (abbreviated as BPNEH) is proposed to provide a new solution for the challenge of efficient energy harvesting for ultra low frequency vibrations, where a horizontal beam which is magnetically coupled to a vertical one vibrates back and forth with large amplitudes through ball-impact, along with a variable potential energy due to the vibration of the coupled vertical one.
Journal ArticleDOI

Overview of Energy Harvesting Technologies Used in Road Vehicles

TL;DR: In this paper , the authors present technologies that allow to recover some of the energy lost in motor vehicles and internal combustion engines used for their propulsion, including fossil and alternative fuels, gaseous fuels and other energy sources such as fuel cells.
Journal ArticleDOI

Influence of Adjusting Moment of Inertia on Behavior of Electromagnetic Energy Harvester

TL;DR: In this article, the mass moment of inertia (MOMI) was used to adjust the resonant frequency of the energy harvester to transform mechanical vibration into electric power.
References
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Journal ArticleDOI

Energy harvesting vibration sources for microsystems applications

TL;DR: A comprehensive review of existing piezoelectric generators is presented in this paper, including impact coupled, resonant and human-based devices, including large scale discrete devices and wafer-scale integrated versions.
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A study of low level vibrations as a power source for wireless sensor nodes

TL;DR: The goal of this paper is not to suggest that the conversion of vibrations is the best or most versatile method to scavenge ambient power, but to study its potential as a viable power source for applications where vibrations are present.
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A review of power harvesting using piezoelectric materials (2003–2006)

TL;DR: The field of power harvesting has experienced significant growth over the past few years due to the ever-increasing desire to produce portable and wireless electronics with extended lifespans as mentioned in this paper, and the use of batteries can be troublesome due to their limited lifespan, thus necessitating their periodic replacement.
Journal ArticleDOI

A piezoelectric vibration based generator for wireless electronics

TL;DR: In this paper, a vibration-based piezoelectric generator has been developed as an enabling technology for wireless sensor networks, where the authors discuss the modeling, design, and optimization of the generator based on a two-layer bending element.
Journal ArticleDOI

Energy Harvesting From Human and Machine Motion for Wireless Electronic Devices

TL;DR: The principles and state-of-art in motion-driven miniature energy harvesters are reviewed and trends, suitable applications, and possible future developments are discussed.
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