Determination of the appropriate piezoelectric materials for various types of piezoelectric energy harvesters with high output power

Nano Energy ◽  
2019 ◽  
Vol 57 ◽  
pp. 581-591 ◽  
Author(s):  
Sun-Woo Kim ◽  
Tae-Gon Lee ◽  
Dae-Hyeon Kim ◽  
Ku-Tak Lee ◽  
Inki Jung ◽  
...  
2013 ◽  
Vol 476 ◽  
pp. 012034 ◽  
Author(s):  
Z Cao ◽  
J He ◽  
Q Wang ◽  
M Hara ◽  
H Oguchi ◽  
...  

Author(s):  
Ahmed S. H. Ahmed ◽  
Utku Soylu ◽  
Munkyo Seo ◽  
Miguel Urteaga ◽  
Mark J. W. Rodwell

Micromachines ◽  
2021 ◽  
Vol 12 (7) ◽  
pp. 803
Author(s):  
Zhongjie Li ◽  
Chuanfu Xin ◽  
Yan Peng ◽  
Min Wang ◽  
Jun Luo ◽  
...  

A novel hybridization scheme is proposed with electromagnetic transduction to improve the power density of piezoelectric energy harvester (PEH) in this paper. Based on the basic cantilever piezoelectric energy harvester (BC-PEH) composed of a mass block, a piezoelectric patch, and a cantilever beam, we replaced the mass block by a magnet array and added a coil array to form the hybrid energy harvester. To enhance the output power of the electromagnetic energy harvester (EMEH), we utilized an alternating magnet array. Then, to compare the power density of the hybrid harvester and BC-PEH, the experiments of output power were conducted. According to the experimental results, the power densities of the hybrid harvester and BC-PEH are, respectively, 3.53 mW/cm3 and 5.14 μW/cm3 under the conditions of 18.6 Hz and 0.3 g. Therefore, the power density of the hybrid harvester is 686 times as high as that of the BC-PEH, which verified the power density improvement of PEH via a hybridization scheme with EMEH. Additionally, the hybrid harvester exhibits better performance for charging capacitors, such as charging a 2.2 mF capacitor to 8 V within 17 s. It is of great significance to further develop self-powered devices.


Author(s):  
Guangya Ding ◽  
Hongjun Luo ◽  
Jun Wang ◽  
Guohui Yuan

A novel lever piezoelectric energy harvester (LPEH) was designed for installation in an actual roadway for energy harvesting. The model incorporates a lever module that amplifies the applied traffic load and transmits it to the piezoelectric ceramic. To observe the piezoelectric growth benefits of the optimized LPEH structure, the output characteristics and durability of two energy harvesters, the LPEH and a piezoelectric energy harvester (PEH) without a lever, were measured and compared by carrying out piezoelectric performance tests and traffic model experiments. Under the same loading condition, the open circuit voltages of the LPEH and PEH were 20.6 and 11.7 V, respectively, which represents a 76% voltage increase for the LPEH compared to the PEH. The output power of the LPEH was 21.51 mW at the optimal load, which was three times higher than that of the PEH (7.45 mW). The output power was linearly dependent on frequency and load, implying the potential application of the module as a self-powered speed sensor. When tested during 300,000 loading cycles, the LPEH still exhibited stable structural performance and durability.


2014 ◽  
Vol 50 (25) ◽  
pp. 1970-1972 ◽  
Author(s):  
Yibin Zhang ◽  
Fei Xu ◽  
Desheng Zhao ◽  
Hongjuan Huang ◽  
Wei Wang ◽  
...  

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