Enhanced performance on piezoelectric MEMS vibration energy harvester by dynamic magnifier under impulsive force

Author:

Aphayvong Sengsavang1,Murakami Shuichi2ORCID,Kanda Kensuke3ORCID,Fujimura Norifumi1ORCID,Yoshimura Takeshi1ORCID

Affiliation:

1. Osaka Metropolitan University, Sakai, Osaka 599-8531, Japan

2. Osaka Research Institute of Industrial Science and Technology, Izumi, Osaka 594-1157, Japan

3. University of Hyogo, Himeji, Hyogo 671-2280, Japan

Abstract

Vibration energy harvesters that use resonance phenomena exhibit a high output power density for constant frequency vibrations, but they suffer from a significant drop in performance for non-steady-state vibrations, which are important for practical applications. In this work, we demonstrate that the output power under an impulsive force can be increased significantly by placing a U-shaped metal component, called a dynamic magnifier (DM), under an MEMS piezoelectric vibration energy harvester (MEMS-pVEH) with a 6 mm long cantilever using a 3  μm thick Pb(Zr,Ti)O3 film. Based on the results of numerical calculations using a model of pVEH with a two-degree-of-freedom (2DOF) system, the DM was designed to have the same resonant frequency as the MEMS-pVEH and a high mechanical quality factor ([Formula: see text]). The waveforms of the output voltage of the fabricated 2DOF-pVEHs were measured for impulsive forces with various duration times, and the output power was calculated by integrating the waveforms over time. The output power of the MEMS-pVEH placed on the DM with a [Formula: see text] of 56 showed a gradual change according to the duration of applying an impulsive force and a maximum of 19 nJ/G2 (G: gravitational acceleration) when the duration of the impulsive force was 3.8 ms. This result was about 90 times greater than the output power of the MEMS-pVEH without a DM. While it is not easy to fabricate pVEHs with a complex 2DOF structure using only the MEMS process, we have demonstrated that the output power can be significantly improved by adding a spring structure to a simple MEMS-pVEH.

Funder

Japan Science and Technology Agency

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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1. A Comprehensive Review on Low-Cost MEMS Accelerometers for Vibration Measurement: Types, Novel Designs, Performance Evaluation, and Applications;Journal of Molecular and Engineering Materials;2024-05-25

2. Micro Energy Harvesting via Piezoelectric and Electromagnetic Dynamics for Higher Power Output;2023 IEEE 9th International Conference on Smart Instrumentation, Measurement and Applications (ICSIMA);2023-10-17

3. Piezoelectric MEMS-based physical reservoir computing system without time-delayed feedback;Japanese Journal of Applied Physics;2023-08-01

4. Stochastic description of a matched-load mechanical energy harvester;IEEE EUROCON 2023 - 20th International Conference on Smart Technologies;2023-07-06

5. Moment-Based Stochastic Analysis of a Bistable Energy Harvester with Matching Network;Applied Sciences;2023-03-18

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