Strategy for enhancing the active harvesting of piezoelectric energy

被引:15
|
作者
Yoshimizu, Kenji [1 ]
Yamamoto, Yuta [1 ]
Asahina, Kei [1 ]
Makihara, Kanjuro [1 ]
机构
[1] Tohoku Univ, Dept Aerosp Engn, Sendai, Miyagi, Japan
关键词
Energy harvesting; piezoelectric; vibration; synchronized switch harvesting on inductor (SSHI); switch control; POWER; CIRCUIT;
D O I
10.1177/1045389X16672592
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This article proposes new methods for enhancing the active harvest of piezoelectric energy using the synchronized switch harvesting on inductor (SSHI) technique. It was experimentally confirmed that the energy harvested by the original synchronized switch harvesting on inductor technique was decreased by the suppression of the vibration amplitude, and this critical problem was solved by developing new control strategies, namely, switch harvesting considering vibration suppression (SCVS) and adaptive SCVS (ASCVS). The SCVS technique was designed to intentionally skip some of the switching actions of the original synchronized switch harvesting on inductor technique, while the ASCVS technique enables more flexible variation of the number of skipped switching actions. The skipping of the switching actions facilitates the recovery of the vibration amplitude produced by the excitation force, and the developed strategies thus maintain the vibration amplitude at the highest possible level, resulting in increased energy harvest. The results of the experimental implementation of the proposed strategies showed that they enabled the harvesting of as much as 10.5 times the energy harvested by the original synchronized switch harvesting on inductor technique. The ASCVS technique particularly enables flexible enhancement of the harvested energy under various vibration conditions.
引用
收藏
页码:1059 / 1070
页数:12
相关论文
共 50 条
  • [21] Piezoelectric MEMS for energy harvesting
    Sang Gook Kim
    Shashank Priya
    Isaku Kanno
    MRS Bulletin, 2012, 37 : 1039 - 1050
  • [22] ENERGY HARVESTING WITH A PIEZOELECTRIC THUNDER
    Wang, Fengxia
    Wu, Wei
    Lozowski, Andy
    Alizadehyazdi, Vahid
    Amin, Abedini
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2015, VOL 4B, 2016,
  • [23] Piezoelectric MEMS for energy harvesting
    Kanno, Isaku
    15TH INTERNATIONAL CONFERENCE ON MICRO AND NANOTECHNOLOGY FOR POWER GENERATION AND ENERGY CONVERSION APPLICATIONS (POWERMEMS 2015), 2015, 660
  • [24] Energy harvesting with piezoelectric cantilever
    Yuan, Jiang-bo
    Xie, Tao
    Chen, Wei-shan
    2008 IEEE ULTRASONICS SYMPOSIUM, VOLS 1-4 AND APPENDIX, 2008, : 1397 - 1400
  • [25] Piezoelectric Energy Harvesting in Automobiles
    Zhu, Qingyuan
    Li, Yingtai
    He, Yuanqin
    Guan, Mingjie
    FERROELECTRICS, 2014, 467 (01) : 33 - 41
  • [26] Tunable unipolar synchronized electric charge extraction strategy for piezoelectric energy harvesting
    Brenes, Alexis
    Lefeuvre, Elie
    Seok, Seonho
    Yoo, Chan-Sei
    JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2019, 30 (11) : 1629 - 1638
  • [27] Design and Implementation of Piezoelectric Energy Harvesting Circuit with Adaptive Inductor Sharing Strategy
    Fan S.
    Zhu Y.
    Wang B.
    Ma W.
    Zhang G.
    Hsi-An Chiao Tung Ta Hsueh/Journal of Xi'an Jiaotong University, 2022, 56 (05): : 95 - 104
  • [28] Enhancing piezoelectric wind energy harvesting with multiple interference cylinders: Impact of height ratio
    Jowkar, Saeed
    Li, Zhengyao
    Shen, Xing
    OCEAN ENGINEERING, 2024, 312
  • [29] Optimization of an SSHC-based full active rectifier for piezoelectric energy harvesting
    Wassouf, Liana
    Jamshidpour, Ehsan
    Frick, Vincent
    ANALOG INTEGRATED CIRCUITS AND SIGNAL PROCESSING, 2023, 116 (03) : 145 - 159
  • [30] Optimization of an SSHC-based full active rectifier for piezoelectric energy harvesting
    Liana Wassouf
    Ehsan Jamshidpour
    Vincent Frick
    Analog Integrated Circuits and Signal Processing, 2023, 116 : 145 - 159