Enhanced electromagnetic wrist-worn energy harvester using repulsive magnetic spring

被引:55
作者
Cai, Mingjing [1 ]
Liao, Wei-Hsin [1 ]
机构
[1] Chinese Univ Hong Kong, Shatin, Dept Mech & Automat Engn, Hong Kong, Peoples R China
关键词
Wrist-worn device; Energy harvester; Arm swing; Magnetic spring; GENERATING ELECTRICITY; WALKING; DESIGN; SPEED;
D O I
10.1016/j.ymssp.2020.107251
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
While wrist-worn electronics have great potential in a variety of areas, their applications are currently constrained by the limited working time of their electrochemical batteries. Harvesting energy from arm swinging motions provides a promising means to address this issue. In this work, we introduce a tiny repulsive magnetic spring to improve the performance of a wrist-worn inertial energy harvester. In contrast to conventional inertial rotational energy harvesters, the proposed device contains a repulsive magnetic spring that consists of two pairs of repulsive magnets. The existence of the magnetic spring lowers the potential energy well depth of the energy harvester by reducing the system's stiffness, thereby enhancing power generation. An analytical model is built to predict the system performance and investigate the effects of the magnetic spring air gap. To validate this design, a prototype is constructed and tested using a bench-top excitation source that emulates the swinging motion of the human arm. The experiments show that, in the tested excitation frequency (0.7-1.3 Hz) and air gap (2.2-3.6 mm) ranges, the average output power is significantly enhanced by the magnetic spring and smaller air gap of magnets results in more improvement, which agrees well with the simulation results. With the requirement of a minimal amount of space, the magnetic spring helps the energy harvester achieve maximum output power of 151 mu W with an air gap of 2.6 mm at 1.3 Hz. Additionally, a maximum power improvement of 425% for an air gap of 2.2 mm at 0.7 Hz is achieved compared with the conventional wrist-worn inertial energy harvester. (C) 2020 Elsevier Ltd. All rights reserved.
引用
收藏
页数:17
相关论文
共 29 条
[1]   Design, analysis and realisation of a high-performance magnetic gear [J].
Atallah, K ;
Calverley, SD ;
Howe, D .
IEE PROCEEDINGS-ELECTRIC POWER APPLICATIONS, 2004, 151 (02) :135-143
[2]   High-Power Density Inertial Energy Harvester Without Additional Proof Mass for Wearables [J].
Cai, Mingjing ;
Liao, Wei-Hsin .
IEEE INTERNET OF THINGS JOURNAL, 2021, 8 (01) :297-308
[3]   Self-powered smart watch and wristband enabled by embedded generator [J].
Cai, Mingjing ;
Wang, Jiahua ;
Liao, Wei-Hsin .
APPLIED ENERGY, 2020, 263
[4]   A smart harvester for capturing energy from human ankle dorsiflexion with reduced user effort [J].
Cai, Mingjing ;
Liao, Wei-Hsin ;
Cao, Junyi .
SMART MATERIALS AND STRUCTURES, 2019, 28 (01)
[5]   Adjustments to Zatsiorsky-Seluyanov's segment inertia parameters [J].
de Leva, P .
JOURNAL OF BIOMECHANICS, 1996, 29 (09) :1223-1230
[6]   Biomechanical energy harvesting: Generating electricity during walking with minimal user effort [J].
Donelan, J. M. ;
Li, Q. ;
Naing, V. ;
Hoffer, J. A. ;
Weber, D. J. ;
Kuo, A. D. .
SCIENCE, 2008, 319 (5864) :807-810
[7]   Improved Capacitance Model Involving Fringing Effects for Electret-Based Rotational Energy Harvesting Devices [J].
Feng, Yue ;
Shao, Bohan ;
Tang, Xusong ;
Han, Yanhui ;
Wu, Tianzhun ;
Suzuki, Yuji .
IEEE TRANSACTIONS ON ELECTRON DEVICES, 2018, 65 (04) :1597-1603
[8]   Rotational energy harvesting using bi-stability and frequency up-conversion for low-power sensing applications: Theoretical modelling and experimental validation [J].
Fu, Hailing ;
Yeatman, Eric M. .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2019, 125 (229-244) :229-244
[9]   Triboelectric energy harvesting from the vibro-impact of three cantilevered beams [J].
Fu, Yiqiang ;
Ouyang, Huajiang ;
Davis, R. Benjamin .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2019, 121 :509-531
[10]   A 3-DIMENSIONAL FIELD SOLUTION FOR AXIALLY-POLARIZED MULTIPOLE DISKS [J].
FURLANI, EP .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 1994, 135 (02) :205-214