Magnetic Frequency Tuning of a Multimodal Vibration Energy Harvester

被引:32
作者
Bouhedma, Sofiane [1 ]
Zheng, Yuhang [1 ]
Lange, Fred [1 ]
Hohlfeld, Dennis [1 ]
机构
[1] Univ Rostock, Fac Comp Sci & Elect Engn, Inst Elect Appliances & Circuits, Albert Einstein Str 2, D-18059 Rostock, Germany
关键词
energy harvesting; vibration; piezoelectricity; nonlinear resonators; magnetic frequency tuning; multimodal structures; bi-stability;
D O I
10.3390/s19051149
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
In this paper, we present a novel vibration-based piezoelectric energy harvester, capable of collecting power at multiple operating frequencies and autonomously adapting itself to the dominant ambient frequencies. It consists of a compact dual-frequency resonator designed such that the first two fundamental natural frequencies are in the range of [50, 100] Hz, which is a typical frequency range for ambient vibrations in industrial environments. A magnetic frequency-tuning scheme is incorporated into the structure, which enables the frequency agility of the system. In contrast to single frequency harvesters, the presented approach combines multi-resonance and frequency tunability of both modes enabling a larger operative bandwidth. We experimentally demonstrate independent bi-directional tunability of our dual-frequency design. Furthermore, a control algorithm based on maximum amplitude tracking has been implemented for self-adaption of the system. The latter has been demonstrated in a system-level simulation model, which integrates the dual-frequency resonator, the magnetic tuning, and the control algorithm.
引用
收藏
页数:14
相关论文
共 25 条
[1]  
Bouhedma S, 2018, IEEE ASME INT C ADV, P1378, DOI 10.1109/AIM.2018.8452288
[2]  
Bouhedma S., 2018, P MIKROSYSTEMTECHNIK
[3]  
Bouhedma S., 2018, SIMULATION CHARACTER, V2, P908, DOI [10.3390/proceedings2130908, DOI 10.3390/PROCEEDINGS2130908]
[4]   A vibration energy harvesting device with bidirectional resonance frequency tunability [J].
Challa, Vinod R. ;
Prasad, M. G. ;
Shi, Yong ;
Fisher, Frank T. .
SMART MATERIALS AND STRUCTURES, 2008, 17 (01)
[5]   Towards an autonomous self-tuning vibration energy harvesting device for wireless sensor network applications [J].
Challa, Vinod R. ;
Prasad, M. G. ;
Fisher, Frank T. .
SMART MATERIALS & STRUCTURES, 2011, 20 (02)
[6]   On intentional introduction of stiffness nonlinearities for energy harvesting under white Gaussian excitations [J].
Daqaq, Mohammed F. .
NONLINEAR DYNAMICS, 2012, 69 (03) :1063-1079
[7]  
Eichhorn C., 2011, P 2011 IEEE 24 INT C
[8]   Broadband Rotational Energy Harvesting with Non-linear Oscillator and Piezoelectric Transduction [J].
Fu, H. ;
Yeatman, E. M. .
16TH INTERNATIONAL CONFERENCE ON MICRO AND NANOTECHNOLOGY FOR POWER GENERATION AND ENERGY CONVERSION APPLICATIONS (POWERMEMS 2016), 2016, 773
[9]   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
[10]   A self-adaptive energy harvesting system [J].
Hoffmann, D. ;
Willmann, A. ;
Hehn, T. ;
Folkmer, B. ;
Manoli, Y. .
SMART MATERIALS AND STRUCTURES, 2016, 25 (03)