Size optimization of metamaterial structure for elastic layer of a piezoelectric vibration energy harvester

被引:31
作者
Ichige, Ryo [1 ]
Kuriyama, Nobuaki [1 ]
Umino, Yohei [1 ]
Tsukamoto, Takuya [1 ]
Suzuki, Takaaki [1 ]
机构
[1] Gunma Univ, Div Mech Sci & Technol, 1-5-1 Tenjin Cho, Kiryu, Gunma 3768515, Japan
关键词
Metamaterial; Piezoelectric; Vibration energy harvester; Polymer MEMS; POWER OUTPUT;
D O I
10.1016/j.sna.2020.112488
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Vibration energy harvesters are attracting attention as sensor node power sources for the Internet of Things society because they are maintenance-free. Vibration energy harvesters, which generate power efficiently by utilizing structural resonance, have difficulty in reducing the size of the device and matching low-frequency bands. In this study, a piezoelectric vibrational energy harvester (PVEH) is proposed with mechanical metamaterials for the elastic layer, which has a low resonance frequency and high-power output. We designed the dimensions of the metamaterial structure for the elastic layer of the PVEH, and the bending stiffness was varied by changing the size of the periodic structure of the metamaterial structure to adjust the device's performance. Finite element analysis was performed for four metamaterial PVEHs with different periodic structure sizes. The metamaterial PVEH with the smallest structure had a 16 % decrease in resonance frequency and 100 % increase in power generation compared to the metamaterial PVEH with the largest structure. The proposed PVEHs were fabricated by photolithography, and their performance was evaluated by vibration tests. In a sinusoidal excitation with an acceleration of 0.2G, assuming that the vibration is caused by human body motion, the metamaterial PVEH with the smallest structure shows a resonance frequency of 32 Hz and a maximum output power of 1.3 mu W. Compared to the conventional flat plate-type PVEH, the resonance frequency is reduced by 48 % and the power output is 3.2 times higher in the proposed PVEH. An increase in flexibility due to metamaterial structures has an advantage that there is no need to change materials or processing processes as compared with the case of using the low stiffness substrate. (C) 2020 Elsevier B.V. All rights reserved.
引用
收藏
页数:10
相关论文
共 39 条
  • [1] Almoneef T.S., 2017, HARVESTING ENERGY MU, DOI [10.1038/341598 017 '157.98-5, DOI 10.1038/341598017'157.98-5.]
  • [2] 3D Soft Metamaterials with Negative Poisson's Ratio
    Babaee, Sahab
    Shim, Jongmin
    Weaver, James C.
    Chen, Elizabeth R.
    Patel, Nikita
    Bertoldi, Katia
    [J]. ADVANCED MATERIALS, 2013, 25 (36) : 5044 - 5049
  • [3] Energy harvesting MEMS device based on thin film piezoelectric cantilevers
    Choi, W. J.
    Jeon, Y.
    Jeong, J. -H.
    Sood, R.
    Kim, S. G.
    [J]. JOURNAL OF ELECTROCERAMICS, 2006, 17 (2-4) : 543 - 548
  • [4] Thermal energy harvesting through pyroelectricity
    Cuadras, A.
    Gasulla, M.
    Ferrari, V.
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2010, 158 (01) : 132 - 139
  • [5] A new energy harvester design for high power output at low frequencies
    Dhakar, Lokesh
    Liu, Huicong
    Tay, F. E. H.
    Lee, Chengkuo
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2013, 199 : 344 - 352
  • [6] Auxetic structure for increased power output of strain vibration energy harvester
    Ferguson, William J. G.
    Kuang, Yang
    Evans, Kenneth E.
    Smith, Christopher W.
    Zhu, Meiling
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2018, 282 : 90 - 96
  • [7] Indoor solar energy harvesting for sensor network router nodes
    Hande, Abhiman
    Polk, Todd
    Walker, William
    Bhatia, Dinesh
    [J]. MICROPROCESSORS AND MICROSYSTEMS, 2007, 31 (06) : 420 - 432
  • [8] Fabrication of Solidified Ionic Liquid with 3D Microstructures and Its Application to Vibration Energy Harvester
    Iida, Taiki
    Tsukamoto, Takuya
    Miwa, Kazumoto
    Ono, Shimpei
    Suzuki, Takaaki
    [J]. SENSORS AND MATERIALS, 2019, 31 (08) : 2527 - 2539
  • [9] 3D Printed Auxetic Mechanical Metamaterial with Chiral Cells and Re-entrant Cores
    Jiang, Yunyao
    Li, Yaning
    [J]. SCIENTIFIC REPORTS, 2018, 8
  • [10] Piezoelectric Polymer Multilayer Coating Method for Vibration Energy Harvester
    Kuriyama, Nobuaki
    Nakajima, Takashi
    Ichige, Ryo
    Suzuki, Takaaki
    [J]. SENSORS AND MATERIALS, 2020, 32 (07) : 2503 - 2515