Theoretical and experimental investigations of a non-linear single degree of freedom electromagnetic vibration energy harvester

R. R. Gatti, I. Howard, M. F. Lumentut
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Abstract

There is an increasing need for sensors to be self-powered and hence autonomous in order to operate in remote and inaccessible locations for long periods of time. Amongst the various ambient sources of energy, mechanical vibration is a viable wasted source of energy and can be found in rotating equipment including generators, motors and compressors as well as structures including bridges. The current research deals with developing a novel non-linear single degree of freedom electromagnetic vibration energy harvester using spatial variation of the magnetic field. Initially, approximate linear methods using Laplace transforms and the linear state space methods were considered, where the magnetic field and hence the coupling coefficient were considered as constants. The linear methods were used to derive the frequency response behavior of the system and also its eigenvalues to determine the approximate resonant frequency range. This was followed by more accurate non-linear single degree of freedom electromagnetic energy harvester model simulation considering the spatial variation of the magnetic field and hence a spatially varying coupling coefficient. An experiment of the single degree-of-freedom one-direction electromagnetic vibration energy harvester (SDOF1D EMVEH) prototype was conducted for a range of frequencies to obtain the time domain data to validate against the theoretical data obtained from theoretical time domain simulation.
非线性单自由度电磁振动能量采集器的理论与实验研究
越来越多的人需要传感器自供电,从而实现自主,以便在偏远和难以接近的地方长时间工作。在各种环境能源中,机械振动是一种可行的浪费能源,可以在旋转设备中找到,包括发电机、电动机和压缩机,以及包括桥梁在内的结构。利用磁场的空间变化,研制了一种新型的非线性单自由度电磁振动能量采集器。最初,考虑了使用拉普拉斯变换的近似线性方法和线性状态空间方法,其中磁场和耦合系数被认为是常数。采用线性方法推导了系统的频响特性,并推导了系统的特征值,确定了系统的近似谐振频率范围。其次,考虑磁场的空间变化,从而考虑空间变化的耦合系数,进行了更精确的非线性单自由度电磁能量采集器模型仿真。对单自由度单向电磁振动能量采集器(SDOF1D EMVEH)样机在一定频率范围内进行实验,获取时域数据,并与理论时域仿真所得理论数据进行验证。
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