Modeling of a Rope-Driven Piezoelectric Vibration Energy Harvester for Low-Frequency and Wideband Energy Harvesting

被引:3
作者
Zhang, Jinhui [1 ]
Lin, Maoyu [1 ]
Zhou, Wei [1 ]
Luo, Tao [1 ]
Qin, Lifeng [1 ]
机构
[1] Xiamen Univ, Dept Mech & Elect Engn, Xiamen 361005, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
piezoelectric vibration energy harvester; low frequency; wideband; modeling;
D O I
10.3390/mi12030305
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
In this work, a mechanical model of a rope-driven piezoelectric vibration energy harvester (PVEH) for low-frequency and wideband energy harvesting was presented. The rope-driven PVEH consisting of one low-frequency driving beam (LFDB) and one high-frequency generating beam (HFGB) connected with a rope was modeled as two mass-spring-damper suspension systems and a massless spring, which can be used to predict the dynamic motion of the LFDB and HFGB. Using this model, the effects of multiple parameters including excitation acceleration, rope margin and rope stiffness in the performance of the PVEH have been investigated systematically by numerical simulation and experiments. The results show a reasonable agreement between the simulation and experimental study, which demonstrates the validity of the proposed model of rope-driven PVEH. It was also found that the performance of the PVEH can be adjusted conveniently by only changing rope margin or stiffness. The dynamic mechanical model of the rope-driven PVEH built in this paper can be used to the further device design or optimization.
引用
收藏
页数:14
相关论文
共 60 条
[1]  
[Anonymous], MILITARY MED RES, DOI DOI 10.1186/S40594-020-00237-0
[2]   Cantilever-based electret energy harvesters [J].
Boisseau, S. ;
Despesse, G. ;
Ricart, T. ;
Defay, E. ;
Sylvestre, A. .
SMART MATERIALS AND STRUCTURES, 2011, 20 (10)
[3]   The Current Development and Future Outlook of Triboelectric Nanogenerators: A Survey of Literature [J].
Cheng, Tinghai ;
Gao, Qi ;
Wang, Zhong Lin .
ADVANCED MATERIALS TECHNOLOGIES, 2019, 4 (03)
[4]   On the Role of Nonlinearities in Vibratory Energy Harvesting: A Critical Review and Discussion [J].
Daqaq, Mohammed F. ;
Masana, Ravindra ;
Erturk, Alper ;
Quinn, D. Dane .
APPLIED MECHANICS REVIEWS, 2014, 66 (04)
[5]   Bidirectional frequency tuning of a piezoelectric energy converter based on a cantilever beam [J].
Eichhorn, C. ;
Goldschmidtboeing, F. ;
Woias, P. .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2009, 19 (09)
[6]   Vacuum-packaged piezoelectric vibration energy harvesters: damping contributions and autonomy for a wireless sensor system [J].
Elfrink, R. ;
Renaud, M. ;
Kamel, T. M. ;
de Nooijer, C. ;
Jambunathan, M. ;
Goedbloed, M. ;
Hohlfeld, D. ;
Matova, S. ;
Pop, V. ;
Caballero, L. ;
van Schaijk, R. .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2010, 20 (10)
[7]   Fabrication and performance of MEMS-based piezoelectric power generator for vibration energy harvesting [J].
Fang, Hua-Bin ;
Liu, Jing-Quan ;
Xu, Zheng-Yi ;
Dong, Lu ;
Wang, Li ;
Chen, Di ;
Cai, Bing-Chu ;
Liu, Yue .
MICROELECTRONICS JOURNAL, 2006, 37 (11) :1280-1284
[8]   Multi-frequency electromagnetic energy harvester using a magnetic spring cantilever [J].
Foisal, Abu Riduan Md ;
Hong, Chinsuk ;
Chung, Gwiy-Sang .
SENSORS AND ACTUATORS A-PHYSICAL, 2012, 182 :106-113
[9]   Impact-driven, frequency up-converting coupled vibration energy harvesting device for low frequency operation [J].
Gu, Lei ;
Livermore, Carol .
SMART MATERIALS AND STRUCTURES, 2011, 20 (04)
[10]   On the efficiencies of piezoelectric energy harvesting circuits towards storage device voltages [J].
Guan, M. J. ;
Liao, W. H. .
SMART MATERIALS AND STRUCTURES, 2007, 16 (02) :498-505