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Analysis and optimal design of a vibration isolation system combined with electromagnetic energy harvester

机译:结合电磁能量采集器的隔振系统分析与优化设计

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This work investigates a vibration isolation energy harvesting system and studies its design to achieve an optimal performance. The system uses a combination of elastic and magnetic components to facilitate its dual functionality. A prototype of the vibration isolation energy harvesting device is fabricated and examined experimentally. A mathematical model is developed using first principle and analyzed using the output frequency response function method. Results from model analysis show an excellent agreement with experiment. Since any vibration isolation energy harvesting system is required to perform two functions simultaneously, optimization of the system is carried out to maximize energy conversion efficiency without jeopardizing the system's vibration isolation performance. To the knowledge of the authors, this work is the first effort to tackle the issue of simultaneous vibration isolation energy harvesting using an analytical approach. Explicit analytical relationships describing the vibration isolation energy harvesting system transmissibility and energy conversion efficiency are developed. Results exhibit a maximum attainable energy conversion efficiency in the order of 1%. Results suggest that for low acceleration levels, lower damping values are favorable and yield higher conversion efficiencies and improved vibration isolation characteristics. At higher acceleration, there is a trade-off where lower damping values worsen vibration isolation but yield higher conversion efficiencies.
机译:这项工作研究了隔振能量收集系统,并研究了其设计以实现最佳性能。该系统使用弹性和磁性组件的组合来促进其双重功能。制作了隔振能量收集装置的原型并进行了实验检查。使用第一原理开发数学模型,并使用输出频率响应函数方法进行分析。模型分析的结果与实验结果非常吻合。由于需要任何隔振能量收集系统来同时执行两个功能,因此需要对系统进行优化以最大程度地提高能量转换效率,而不会损害系统的隔振性能。就作者所知,这项工作是使用分析方法解决同时振动隔离能量收集问题的第一项努力。建立了明确的分析关系,描述了隔振能量收集系统的传递性和能量转换效率。结果显示可达到的最大能量转换效率约为1%。结果表明,对于低加速度水平,较低的阻尼值是有利的,并会产生较高的转换效率和改善的隔振特性。在较高的加速度下,需要权衡取舍,较低的阻尼值会降低隔振效果,但会带来更高的转换效率。

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