Experimental Analysis on the Transduction Coefficient of a Non-Linear Electromagnetic Energy Harvesting Device with Softening Stiffness

Author(s):  
P. S. Low ◽  
R. Ramlan ◽  
H. A. Ghani ◽  
N. S. Muhammad

Nonlinear energy harvesting devices in the form of stiffness nonlinearity have emerged as among the effective solutions to overcome the performance limit of linear energy harvesting devices. However, up to now, researches on the nonlinear devices are only focusing on the ability to widen the bandwidth while the limit of employing linear transduction coefficient in a nonlinear system has yet to be heavily discussed. This paper investigates on the transduction coefficient for both linear and nonlinear systems of an electromagnetic energy harvesting device as a function of the excitation frequency. It is proven that the transduction coefficient of the nonlinear device is larger than its equivalent linear device, especially in the multi-stable solutions region. In common practice, the nonlinearity in the nonlinear system is considered weak, and its transduction coefficient is assumed to converge to the one produced by the linear system. The limits to which the transduction coefficient of a linear system can be employed on the nonlinear system were drawn based on the experimental analysis conducted on the proposed device. The device was designed to perform as a linear or nonlinear system, where the degree of nonlinearity was changed by varying the gap between the magnets. The limit of the transduction coefficient was determined from the analysis of the harmonic ratio. The results show that the linear transduction coefficient is valid to be employed to the nonlinear system when the harmonic ratio is less than five per cent at the multi-stable solutions region.

Author(s):  
Yan Chen ◽  
Armaghan Salehian

Vibration energy harvesting devices have been widely used to power many electronic self-sustainable devices. Most traditional linear energy harvesters exploit the phenomenon of resonance to produce electric power. Nonlinear energy harvesters however present more interesting alternatives and have demonstrated capabilities to harvest power over a wider range of frequencies due to characteristics such as bifurcation. The aim of this study is to introduce an alternative design to nonlinear electromagnetic energy harvesting devices to improve the power production of the unit. The configuration presented in the current work has more degrees of freedom compared to some previously designed devices, and has demonstrated higher power efficiency over a wider range of frequencies. The power outputs for both previous and current designs are compared and validated against their experimental values. Finally, the validated numerical model is used to find the optimal design to produce the maximum power.


Energy ◽  
2021 ◽  
Vol 228 ◽  
pp. 120591
Author(s):  
Ning Zhou ◽  
Zehao Hou ◽  
Ying Zhang ◽  
Junyi Cao ◽  
Chris R. Bowen

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