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

被引:4
|
作者
Aphayvong, Sengsavang [1 ]
Murakami, Shuichi [2 ]
Kanda, Kensuke [3 ]
Fujimura, Norifumi [1 ]
Yoshimura, Takeshi [1 ]
机构
[1] Osaka Metropolitan Univ, Sakai, Osaka 5998531, Japan
[2] Osaka Res Inst Ind Sci & Technol, Izumi, Osaka 5941157, Japan
[3] Univ Hyogo, Himeji, Hyogo 6712280, Japan
基金
日本科学技术振兴机构;
关键词
LOW-FREQUENCY; IMPACT; INTERNET; DRIVEN;
D O I
10.1063/5.0116838
中图分类号
O59 [应用物理学];
学科分类号
摘要
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 mu m thick Pb(Zr,Ti)O-3 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 ( Q m). 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 Q m of 56 showed a gradual change according to the duration of applying an impulsive force and a maximum of 19 nJ/G(2) (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. Published under an exclusive license by AIP Publishing.
引用
收藏
页数:6
相关论文
共 50 条
  • [31] White Noise Responsiveness of an AlN Piezoelectric MEMS Cantilever Vibration Energy Harvester
    Jia, Y.
    Seshia, A. A.
    14TH INTERNATIONAL CONFERENCE ON MICRO AND NANOTECHNOLOGY FOR POWER GENERATION AND ENERGY CONVERSION APPLICATIONS (POWERMEMS 2014), 2014, 557
  • [32] MEMS-based low-frequency piezoelectric vibration energy harvester
    Li, Peng-Wei, 1600, Chinese Academy of Sciences (22):
  • [33] A Vibration-Based MEMS Piezoelectric Energy Harvester and Power Conditioning Circuit
    Yu, Hua
    Zhou, Jielin
    Deng, Licheng
    Wen, Zhiyu
    SENSORS, 2014, 14 (02): : 3323 - 3341
  • [34] Adaptive tuned piezoelectric MEMS vibration energy harvester using an electrostatic device
    H. Madinei
    H. Haddad Khodaparast
    S. Adhikari
    M.I. Friswell
    M. Fazeli
    The European Physical Journal Special Topics, 2015, 224 : 2703 - 2717
  • [35] Design of piezoelectric MEMS cantilever for low-frequency vibration energy harvester
    Takei, Ryohei
    Makimoto, Natsumi
    Okada, Hironao
    Itoh, Toshihiro
    Kobayashi, Takeshi
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2016, 55 (06)
  • [36] A MEMS PIEZOELECTRIC VIBRATION ENERGY HARVESTER BASED ON TRAPEZOIDAL CANTILEVER BEAM ARRAY
    He, Xianming
    Wen, Quan
    Wen, Zhiyu
    Mu, Xiaojing
    2020 33RD IEEE INTERNATIONAL CONFERENCE ON MICRO ELECTRO MECHANICAL SYSTEMS (MEMS 2020), 2020, : 532 - 535
  • [37] Nonlinear Multi-Mode Wideband Piezoelectric MEMS Vibration Energy Harvester
    Nabavi, Seyedfakhreddin
    Zhang, Lihong
    IEEE SENSORS JOURNAL, 2019, 19 (13) : 4837 - 4848
  • [38] Fabrication, Simulation and Characterisation of MEMS Piezoelectric Vibration Energy Harvester for Low Frequency
    Sharma, A.
    Olszewski, O. Z.
    Torres, J.
    Mathewson, A.
    Houlihan, R.
    EUROSENSORS 2015, 2015, 120 : 645 - 650
  • [39] Piezoelectric vibration energy harvester with two-stage force amplification
    Wang, Lirong
    Chen, Shubin
    Zhou, Wanlu
    Xu, Tian-Bing
    Zuo, Lei
    JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2017, 28 (09) : 1175 - 1187