Finite-Element Analysis of a Varying-Width Bistable Piezoelectric Energy Harvester

被引:15
作者
Kumar, Tarun [1 ]
Kumar, Rajeev [1 ]
Chauhan, Vishal S. [1 ]
Twiefel, Jens [2 ]
机构
[1] Indian Inst Technol Mandi, Sch Engn, Mandi 175001, Himachal Prades, India
[2] Leibniz Univ Hannover, Inst Dynam & Vibrat Res, Hannover, Germany
关键词
BEAM STRUCTURES; POWER OUTPUT; CANTILEVER; VIBRATIONS; FREQUENCY; DESIGN; MICROSYSTEMS; OPTIMIZATION; GENERATOR; SENSOR;
D O I
10.1002/ente.201500191
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In this study, a finite-element analysis of a varying-width piezoelectric energy harvester (PEH) has been presented. A varying-width piezoelectric energy harvester (cantilever type) has variation in the width at definite intervals along its length. To harvest the energy over the wide frequency range of environmental vibrations, nonlinearity is introduced in the stiffness by mean of two neodymium magnets. The width of the proposed varying-width cantilever PEH is calculated using block pulse functions (BPFs). The objective of applying BPFs is to proximate a triangular PEH (with fixed base) into a proposed varying-width PEH with three rectangular sections along length. The use of BPFs enable the use of rectangular patches of lead zirconate titanate (PZT-5A). This leads to a reduction in cost as machining PZT at other than straight cuts results in an extensive increase in the production costs. The varying-width piezoelectric cantilever beam is subjected to harmonic base excitations by applying a vertical acceleration of 0.2 g (g=9.81 ms(-2)). Numerical study indicates that the bistable varying-width PEH generates at least two times the average power than that generated by a bistable uniform-width PEH for the same volume of piezoelectric material and for the same linear natural frequency. Furthermore, the bistable varying-width PEH is optimized using a genetic algorithm technique to maximize the mean power density.
引用
收藏
页码:1243 / 1249
页数:7
相关论文
共 50 条
  • [31] Nonlinear Dynamics and Power Generation on a New Bistable Piezoelectric-Electromagnetic Energy Harvester
    Yao, Minghui
    Liu, Pengfei
    Wang, Hongbo
    COMPLEXITY, 2020, 2020
  • [32] FEM-Inclusive Transfer Learning for Bistable Piezoelectric MEMS Energy Harvester Design
    Abouzarkhanifard, Aylar
    Chimeh, Hamidreza Ehsani
    Janaideh, Mohammad Al
    Zhang, Lihong
    IEEE SENSORS JOURNAL, 2023, 23 (04) : 3521 - 3531
  • [33] A novel T-shaped beam bistable piezoelectric energy harvester with a moving magnet
    Dang, Shuai
    Hou, Chengwei
    Shan, Xiaobiao
    Sui, Guangdong
    Zhang, Xiaofan
    ENERGY, 2024, 300
  • [34] Damping ratio and power output prediction of an electromagnetic energy harvester designed through finite element analysis
    Thein, Chung Ket
    Foong, Faruq Muhammad
    Shu, Yi-Chung
    SENSORS AND ACTUATORS A-PHYSICAL, 2019, 286 : 220 - 231
  • [35] Finite-Element Analysis of Stress on Dental Implant Prosthesis
    Rubo, Jose Henrique
    Capello Souza, Edson Antonio
    CLINICAL IMPLANT DENTISTRY AND RELATED RESEARCH, 2010, 12 (02) : 105 - 113
  • [36] Design and analysis of switchable magnetic polarity bistable energy harvester
    Satpute, Nitin Vijay
    Jugulkar, Lalitkumar M.
    Satpute, Sarika Nitin
    Khot, Siddappa M.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART C-JOURNAL OF MECHANICAL ENGINEERING SCIENCE, 2019, 233 (09) : 3018 - 3037
  • [37] Piezoelectric energy enhancement strategy for active fuzzy harvester with time-varying and intermittent switching
    Hara, Yushin
    Zhou, Meng
    Li, An
    Otsuka, Keisuke
    Makihara, Kanjuro
    SMART MATERIALS AND STRUCTURES, 2021, 30 (01)
  • [38] Nonlinear finite element system simulation of piezoelectric vibration-based energy harvesters
    Hegendoerfer, Andreas
    Steinmann, Paul
    Mergheim, Julia
    JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2022, 33 (10) : 1292 - 1307
  • [39] Analysis of a Cantilevered Piezoelectric Energy Harvester in Different Orientations for Rotational Motion
    Su, Wei-Jiun
    Lin, Jia-Han
    Li, Wei-Chang
    SENSORS, 2020, 20 (04)
  • [40] Analysis and design of power conditioning circuit for piezoelectric vibration energy harvester
    Savarimuthu, Kirubaveni
    Sankararajan, Radha
    Murugesan, Sudha
    IET SCIENCE MEASUREMENT & TECHNOLOGY, 2017, 11 (06) : 723 - 730