A sandwiched piezoelectric transducer with flex end-caps for energy harvesting in large force environments

被引:44
|
作者
Kuang, Yang [1 ]
Daniels, Alice [2 ]
Zhu, Meiling
机构
[1] Univ Exeter, Coll Engn Math & Phys Sci, Exeter EX4 4QF, Devon, England
[2] Cranfield Univ, Dept Mfg & Mat, Cranfield MK43 0AL, Beds, England
基金
英国工程与自然科学研究理事会;
关键词
piezoelectric energy harvesting; sandwiched piezoelectric transducer; cymbal transducer; wearable energy harvesting; shoe energy harvesting;
D O I
10.1088/1361-6463/aa7b28
中图分类号
O59 [应用物理学];
学科分类号
摘要
This paper presents a sandwiched piezoelectric transducer (SPT) for energy harvesting in large force environments with increased load capacity and electric power output. The SPT uses (1) flex end-caps to amplify the applied load force so as to increase its power output and (2) a sandwiched piezoelectric-substrate structure to reduce the stress concentration in the piezoelectric material so as to increase the load capacity. A coupled piezoelectric-circuit finite element model (CPC-FEM) was developed, which is able to directly predict the electric power output of the SPT connected to a load resistor. The CPC-FEM was used to study the effects of various parameters of the SPT on the performance to obtain an optimal design. These parameters included the substrate thickness, the end-cap material and thickness, the electrode length, the joint length, the end-cap internal angle and the PZT thickness. A prototype with optimised parameters was tested on a loading machine, and the experimental results were compared with simulation. A good agreement was observed between simulation and experiment. When subjected to a 1 kN 2 Hz sinusoidal force applied by the loading machine, the SPT produced an average power of 4.68 mW. The application of the SPT as a footwear energy harvester was demonstrated by fitting the SPT into a boot and performing the tests on a treadmill, and the SPT generated an average power of 2.5 mW at a walking speed of 4.8 km h(-1).
引用
收藏
页数:11
相关论文
共 50 条
  • [1] A Flex-Compressive-Mode Piezoelectric Transducer for Mechanical Vibration/Strain Energy Harvesting
    Li, Xiaotian
    Guo, Mingsen
    Dong, Shuxiang
    IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2011, 58 (04) : 698 - 703
  • [2] Design, analysis and testing of a piezoelectric flex transducer for harvesting bio-kinetic energy
    Daniels, A.
    Zhu, M.
    Tiwari, A.
    13TH INTERNATIONAL CONFERENCE ON MICRO AND NANOTECHNOLOGY FOR POWER GENERATION AND ENERGY CONVERSION APPLICATIONS (POWERMEMS 2013), 2013, 476
  • [3] Energy harvesting with piezoelectric drum transducer
    Wang, Sheng
    Lam, Kwok Ho
    Sun, Cheng Liang
    Kwok, Kin Wing
    Chan, Helen Lai Wa
    Guo, Ming Sen
    Zhao, Xing-Zhong
    APPLIED PHYSICS LETTERS, 2007, 90 (11)
  • [4] Harvesting rainfall energy by means of piezoelectric transducer
    Viola, F.
    Romano, P.
    Miceli, R.
    Acciari, G.
    2013 4TH INTERNATIONAL CONFERENCE ON CLEAN ELECTRICAL POWER (ICCEP): RENEWABLE ENERGY RESOURCES IMPACT, 2013, : 634 - 639
  • [5] Comparative analysis of force amplified piezoelectric transducer used for asphalt pavement energy harvesting
    Zhao, Hongduo
    Lin, Zhongpu
    Qin, Luyao
    FUNCTIONAL PAVEMENT DESIGN, 2016, : 115 - 115
  • [6] On energy harvesting using piezoelectric transducer with two-port model under force excitation
    Tavares, Rafael
    Ruderman, Michael
    2019 IEEE INTERNATIONAL CONFERENCE ON MECHATRONICS (ICM), 2019, : 414 - 419
  • [7] Energy harvesting and evaluation of a novel piezoelectric bridge transducer
    Yesner, G.
    Jasim, A.
    Wang, H.
    Basily, B.
    Maher, A.
    Safari, A.
    SENSORS AND ACTUATORS A-PHYSICAL, 2019, 285 : 348 - 354
  • [8] Piezoelectric energy harvesting system for hostile environments
    Pangallo, G.
    Rao, S.
    Carotenuto, R.
    Della Corte, F. G.
    2016 12TH CONFERENCE ON PH.D. RESEARCH IN MICROELECTRONICS AND ELECTRONICS (PRIME), 2016,
  • [9] Finite element analysis of a dual-layer substrate sandwiched bridge piezoelectric transducer for harvesting energy from asphalt pavement
    Long, Su Xian
    Khoo, Shin Yee
    Ong, Zhi Chao
    Soong, Ming Foong
    2019 IEEE INTERNATIONAL CONFERENCE ON SENSORS AND NANOTECHNOLOGY (SN), 2019, : 217 - 220
  • [10] Vibration energy harvesting by a Timoshenko beam model and piezoelectric transducer
    Stoykov, S.
    Litak, G.
    Manoach, E.
    EUROPEAN PHYSICAL JOURNAL-SPECIAL TOPICS, 2015, 224 (14-15): : 2755 - 2770