Linear Segmented Arc-Shaped Piezoelectric Branch Beam Energy Harvester for Ultra-Low Frequency Vibrations

被引:5
|
作者
Piyarathna, Iresha Erangani [1 ]
Thabet, Ahmed Mostafa [2 ]
Ucgul, Mustafa [1 ]
Lemckert, Charles [1 ]
Lim, Yee Yan [3 ]
Tang, Zi Sheng [4 ]
机构
[1] Southern Cross Univ, Fac Sci & Engn, East Lismore, NSW 2480, Australia
[2] Fortescue Future Ind Pty Ltd, 160 Lakes Rd, Hazelmere, WA 6055, Australia
[3] Sri Emas Int Sch, Shah Alam 40000, Selangor, Malaysia
[4] Brunel Univ London, Coll Engn Design & Phys Sci, Kingston Lane, Uxbridge UB8 3PH, England
关键词
arc-shaped branch beam harvester; curved beam; human motion; macro-fibre composite (MFC); piezoelectric energy harvesting; CIRCUIT; SINGLE;
D O I
10.3390/s23115257
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Piezoelectric energy harvesting systems have been drawing the attention of the research community over recent years due to their potential for recharging/replacing batteries embedded in low-power-consuming smart electronic devices and wireless sensor networks. However, conventional linear piezoelectric energy harvesters (PEH) are often not a viable solution in such advanced practices, as they suffer from a narrow operating bandwidth, having a single resonance peak present in the frequency spectrum and very low voltage generation, which limits their ability to function as a standalone energy harvester. Generally, the most common PEH is the conventional cantilever beam harvester (CBH) attached with a piezoelectric patch and a proof mass. This study investigated a novel multimode harvester design named the arc-shaped branch beam harvester (ASBBH), which combined the concepts of the curved beam and branch beam to improve the energy-harvesting capability of PEH in ultra-low-frequency applications, in particular, human motion. The key objectives of the study were to broaden the operating bandwidth and enhance the harvester's effectiveness in terms of voltage and power generation. The ASBBH was first studied using the finite element method (FEM) to understand the operating bandwidth of the harvester. Then, the ASBBH was experimentally assessed using a mechanical shaker and real-life human motion as excitation sources. It was found that ASBBH achieved six natural frequencies within the ultra-low frequency range (<10 Hz), in comparison with only one natural frequency achieved by CBH within the same frequency range. The proposed design significantly broadened the operating bandwidth, favouring ultra-low-frequency-based human motion applications. In addition, the proposed harvester achieved an average output power of 427 mu W at its first resonance frequency under 0.5 g acceleration. The overall results of the study demonstrated that the ASBBH design can achieve a broader operating bandwidth and significantly higher effectiveness, in comparison with CBH.
引用
收藏
页数:24
相关论文
共 50 条
  • [31] Design and Experimental Investigation of an Ultra-Low Frequency, Low-Intensity, and Multidirectional Piezoelectric Energy Harvester with Liquid as the Energy-Capture Medium
    Li, Ning
    Yang, Fan
    Luo, Tao
    Qin, Lifeng
    MICROMACHINES, 2023, 14 (02)
  • [32] Dataset for the identification of a ultra-low frequency multidirectional energy harvester for wind turbines
    Bacaicoa, Julen
    Hualde-Otamendi, Mikel
    Merino-Olague, Mikel
    Plaza, Aitor
    Iriarte, Xabier
    Castellano-Aldave, Carlos
    Carlosena, Alfonso
    DATA IN BRIEF, 2024, 57
  • [33] Multi-directional reconfigurable ultra-low frequency vibration energy harvester
    Zhang, Zhenming
    Liu, Libo
    Qiu, Jing
    Nong, Aocheng
    Li, Mingyu
    Xinjie, Zeng
    Xiong, Chao
    Cao, Cong
    Huang, Shuanglong
    ENGINEERING RESEARCH EXPRESS, 2025, 7 (01):
  • [34] Investigation of an ultra-low frequency piezoelectric energy harvester with high frequency up-conversion factor caused by internal resonance mechanism
    Wu, Yipeng
    Li, Sen
    Fan, Kangqi
    Ji, Hongli
    Qiu, Jinhao
    MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2022, 162
  • [35] A Novel Bird-Shape Broadband Piezoelectric Energy Harvester for Low Frequency Vibrations
    Yu, Han
    Zhang, Xiaofan
    Shan, Xiaobiao
    Hu, Liangxing
    Zhang, Xingxu
    Hou, Chengwei
    Xie, Tao
    MICROMACHINES, 2023, 14 (02)
  • [36] A low frequency piezoelectric energy harvester with trapezoidal cantilever beam: theory and experiment
    Guangyi Zhang
    Shiqiao Gao
    Haipeng Liu
    Shaohua Niu
    Microsystem Technologies, 2017, 23 : 3457 - 3466
  • [37] A low frequency piezoelectric energy harvester with trapezoidal cantilever beam: theory and experiment
    Zhang, Guangyi
    Gao, Shiqiao
    Liu, Haipeng
    Niu, Shaohua
    MICROSYSTEM TECHNOLOGIES-MICRO-AND NANOSYSTEMS-INFORMATION STORAGE AND PROCESSING SYSTEMS, 2017, 23 (08): : 3457 - 3466
  • [38] Low-Frequency Broadband Piezoelectric Vibration Energy Harvester Based on Double L-shaped Beam Structures
    Shifan Huang
    Guobao Dong
    Maoying Zhou
    Journal of Vibration Engineering & Technologies, 2022, 10 : 3179 - 3189
  • [39] Low-Frequency Broadband Piezoelectric Vibration Energy Harvester Based on Double L-shaped Beam Structures
    Huang, Shifan
    Dong, Guobao
    Zhou, Maoying
    JOURNAL OF VIBRATION ENGINEERING & TECHNOLOGIES, 2022, 10 (08) : 3179 - 3189
  • [40] A Linear-Arc Composite Beam Piezoelectric Energy Harvester Modeling and Finite Element Analysis
    Zhang, Xuhui
    Guo, Yan
    Zhu, Fulin
    Chen, Xiaoyu
    Tian, Hao
    Xu, Hengtao
    MICROMACHINES, 2022, 13 (06)