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Journal ArticleDOI

Towards an autonomous self-tuning vibration energy harvesting device for wireless sensor network applications

Vinod R. Challa, +2 more
- 06 Jan 2011 - 
- Vol. 20, Iss: 2, pp 025004
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TLDR
In this article, the magnetic stiffness technique was used to tune the resonance frequency of a VEH device to match the frequency of the device and the source frequency in order to harvest energy.
Abstract
Future deployment of wireless sensor networks will ultimately require a self-sustainable local power source for each sensor, and vibration energy harvesting is a promising approach for such applications. A requirement for efficient vibration energy harvesting is to match the device and source frequencies. While techniques to tune the resonance frequency of an energy harvesting device have recently been described, in many applications optimization of such systems will require the energy harvesting device to be able to autonomously tune its resonance frequency. In this work a vibration energy harvesting device with autonomous resonance frequency tunability utilizing a magnetic stiffness technique is presented. Here a piezoelectric cantilever beam array is employed with magnets attached to the free ends of cantilever beams to enable magnetic force resonance frequency tuning. The device is successfully tuned from �27% to +22% of its untuned resonance frequency while outputting a peak power of approximately 1 mW. Since the magnetic force tuning technique is semi-active, energy is only consumed during the tuning process. The developed prototype consumed maximum energies of 3.3 and 3.9 J to tune to the farthest source frequencies with respect to the untuned resonance frequency of the device. The time necessary for this prototype device to harvest the energy expended during its most energy-intensive (largest resonant frequency adjustment) tuning operation is 88 min in a low amplitude 0.1g vibration environment, which could be further optimized using higher efficiency piezoelectric materials and system components. (Some figures in this article are in colour only in the electronic version)

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Citations
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Piezoelectric energy harvesting: State-of-the-art and challenges

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Improving functionality of vibration energy harvesters using magnets

TL;DR: In this article, a comprehensive experimental study was conducted to investigate the use of magnets for improving the functionality of energy harvesters under various vibration scenarios, and the optimal nonlinear configuration (in terms of distance between magnets) was determined to be near the monostable-to-bistable transition region.
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Wireless Sensor Networks with Energy Harvesting

TL;DR: This chapter contains sections titled: Introduction Node Platforms Techniques of Energy Harvesting Prediction Models Protocols for EHWSNs and References.
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Energy harvesting: an integrated view of materials, devices and applications

TL;DR: This article will review various state-of-the-art materials and devices for direct energy conversion and in particular will include multistep energy conversion approaches and highlight the nano-materials science underlying energy harvesting principles and devices.
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A multiple-degree-of-freedom piezoelectric energy harvesting model:

TL;DR: In this article, the authors studied the applicability of vibration energy harvesters as single-degree-of-freedom (SFOF) models and showed that SFOF models are only efficient near sole resonance.
References
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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

A micro electromagnetic generator for vibration energy harvesting

TL;DR: In this paper, the authors presented a small (component volume 1 cm3, practical volume 1 5 cm3) electromagnetic generator utilizing discrete components and optimized for a low ambient vibration level based upon real application data.
Journal ArticleDOI

Nonlinear dynamics for broadband energy harvesting: Investigation of a bistable piezoelectric inertial generator

TL;DR: In this paper, a bistable inertial oscillator comprised of permanent magnets and a piezoelectric cantilever beam is used to demonstrate enhanced capabilities and new challenges.
Journal ArticleDOI

An electromagnetic, vibration-powered generator for intelligent sensor systems

TL;DR: In this article, the design of miniature generators capable of converting ambient vibration energy into electrical energy for use in powering intelligent sensor systems is described and experimental results are described and test results presented.
Journal ArticleDOI

A vibration energy harvesting device with bidirectional resonance frequency tunability

TL;DR: In this article, the design and testing of a resonance frequency tunable energy harvesting device using a magnetic force technique is presented, which enabled resonance tuning to ±20% of the untuned resonant frequency.
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