Design and analysis of magnetostrictive two-dimensional kinetic energy harvester

被引:2
作者
Liu, Huifang [1 ]
Tong, Xiaoyan [1 ]
Sun, Xingwei [1 ]
Wang, Wenguo [1 ]
Su, Liang [1 ]
Chang, Yunlong [1 ]
Liu, Zhanqi [1 ]
机构
[1] Shenyang Univ Technol, Sch Mech Engn, Shenyang 110870, Liaoning, Peoples R China
基金
中国国家自然科学基金;
关键词
energy harvester; magnetostriction; force amplification mechanism; bias magnetic field; OPTIMIZATION;
D O I
10.1088/1361-665X/ad1deb
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Conventional energy harvesters often require high ambient vibration frequencies and can only capture vibration energy in a single direction. To address these issues, this paper designs a magnetostrictive two-dimensional kinetic energy harvester placed under the floor and capable of capturing energy in both vertical and horizontal directions. In order to achieve higher electrical power output at low-frequency input forces, a two-stage force amplification mechanism is designed to amplify the walking kinetic energy of pedestrians and the main parameters of this structure are analyzed and optimized. On the other hand, by constructing different forms of bias magnetic field, the influence of bias magnetic field on the deflection and motion of the internal magnetic domain of Terfenol-D is systematically studied, and the best bias form that can make the material shows the strongest magnetization characteristics is determined. Next, a prototype harvester was built, and an experimental vibration system was set up to test and analyze the output characteristics of the harvester comprehensively. The experimental results show that the harvester produces 21.2 mW of peak output power under sinusoidal excitation at an operating frequency of 4 Hz. Under random excitation, a peak output voltage of 2.64 V and 170 mW peak power was obtained. Under actual pedestrian walking tests, 17.62 mW peak output power is obtained to power low-power devices. The study's results provide preliminary evidence that the designed magnetostrictive energy harvester can stably harvest kinetic energy from pedestrian walking.
引用
收藏
页数:20
相关论文
共 52 条
  • [1] Balouchi F., 2013, Footfall Energy Harvesting: Footfall Energy Harvesting Conversion Mechanisms
  • [2] Organic piezoelectric energy harvesters in floor
    Bischur, E.
    Schwesinger, N.
    [J]. MATERIALS SCIENCE AND INFORMATION TECHNOLOGY, PTS 1-8, 2012, 433-440 : 5848 - 5853
  • [3] Energy harvesting using flexible piezoelectric materials from human walking motion: Theoretical analysis
    Cha, Youngsu
    [J]. JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2017, 28 (20) : 3006 - 3015
  • [4] Design and development of a high-performance tensile-mode piezoelectric energy harvester based on a three-hinged force-amplification mechanism
    Chang, Hao-Lin
    Su, Wei-Jiun
    [J]. SMART MATERIALS AND STRUCTURES, 2022, 31 (07)
  • [5] Review of magnetostrictive vibration energy harvesters
    Deng, Zhangxian
    Dapino, Marcelo J.
    [J]. SMART MATERIALS AND STRUCTURES, 2017, 26 (10)
  • [6] Performance of a modified magnetostrictive energy harvester in mechanical vibration
    Dey, Subhasish
    Roy, Debabrata
    Patra, Soumyabrata
    Santra, Tapan
    [J]. HELIYON, 2019, 5 (01)
  • [7] Structural Health Monitoring of a Composite Panel Based on PZT Sensors and a Transfer Impedance Framework
    Dziendzikowski, Michal
    Niedbala, Patryk
    Kurnyta, Artur
    Kowalczyk, Kamil
    Dragan, Krzysztof
    [J]. SENSORS, 2018, 18 (05)
  • [8] Feasibility Study for Using Piezoelectric Energy Harvesting Floor in Buildings' Interior Spaces
    Elhalwagy, Adnan Mohamed
    Ghoneem, Mahmoud Yousef M.
    Elhadidi, Mohamed
    [J]. INTERNATIONAL CONFERENCE - ALTERNATIVE AND RENEWABLE ENERGY QUEST (AREQ 2017), 2017, 115 : 114 - 126
  • [9] Vibrational Energy Harvesting From Human Gait
    Elvin, Niell G.
    Elvin, Alex A.
    [J]. IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2013, 18 (02) : 637 - 644
  • [10] Design and optimisation of an underfloor energy harvesting system
    Evans, Matthew
    Tang, Lihua
    Tao, Kai
    Aw, Kean
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2019, 285 : 613 - 622