Improving the performance of low-frequency magnetic energy harvesters using an internal magnetic-coupled mechanism

Author:

You Zhixiong1,Miao Huining1,Shi Yang1ORCID,Beer Michael234ORCID

Affiliation:

1. The Joint Laboratory for International Cooperation in Structural Mechanics of Composite Materials for Electronic Devices, School of Mechano-Electronic Engineering, Xidian University 1 , Xi'an 710071, China

2. Institute for Risk and Uncertainty, University of Liverpool 2 , Liverpool, United Kingdom

3. Institute for Risk and Reliability, Leibniz University Hannover 3 , Hannover, Germany

4. International Joint Research Center for Resilient Infrastructure & International Joint Research Center for Engineering Reliability and Stochastic Mechanics, Tongji University 4 , Shanghai, China

Abstract

In this study, we present a novel low-frequency magnetic field energy harvester (EH) employing beryllium bronze/Pb(Zr,Ti)O3 ceramic composited dual-beam structures with tip magnets attached to the inner and outer beams. This design incorporates the internal magnetic-coupled (IMC) effect, resulting in significantly enhanced coupling ability and a wide bandwidth. The validity of the IMC mechanism is confirmed through theoretical formulas and numerical simulations. By leveraging the IMC condition, the EH achieves an expanded bandwidth, which increases from 22 to 43 Hz. Moreover, the total output voltages at the inherent resonance and internal resonance are boosted by 15.4% and 32%, respectively. The performance of the IMC-EH can be further improved by increasing the number of the endmost magnets. Experimental investigations reveal that the IMC-EH generates a maximum RMS output power density of 56.25 μW Oe−2 cm−3, surpassing existing magnetically coupled piezoelectric energy harvesters. Remarkably, even under an ambient magnetic field as low as 1 Oe, the proposed IMC-EH still yields a total output power of 185 μW, sufficient to continuously power 26 LEDs in real time. This demonstrates its potential as a promising solution for low-power consumption small electronics. Furthermore, the implications of this work extend beyond its immediate benefits, as it inspires the design of future self-powered wireless sensor networks in the context of the Internet of Things.

Funder

Natural Science Foundation of Shaanxi Province

Fundamental Research Funds for the Central Universities

Publisher

AIP Publishing

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