旋转和陀螺仪MEMS能量清除

E. Yeatman
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引用次数: 17

摘要

从运动和振动中提取能量是为无线传感器供电的一种有吸引力的途径,而MEMS(微机电系统)技术非常适合小型化这种发电机。大多数报道的MEMS运动驱动拾荒器使用线性位移,并且具有非常有限的输出功率。本文提出并分析了两种备选方案:谐振式旋转发生器,其证明质量的角幅值大于源运动的角幅值;陀螺仪式扫气器,其证明质量主动旋转或振动。通过分别避免传统器件的线性位移限制和有限质量,表明可获得功率的大幅增加是可能的,特别是如果寄生阻尼最小化
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Rotating and gyroscopic MEMS energy scavenging
Extracting energy from motion and vibration is an attractive route to powering wireless sensors, and MEMS (microelectromechanical systems) technology is well suited to miniaturizing such generators. Most reported MEMS motion-driven scavengers use linear displacement, and have very restricted output power. Here two alternatives are proposed and analyzed: resonant rotating generators, in which the angular amplitude of the proof mass is greater than that of the source motion, and gyroscopic scavengers, in which the proof mass is actively spun or vibrated. By avoiding, respectively, the linear displacement limit and the limited mass of conventional devices, it is shown that large increases in obtainable power are possible, particularly if parasitic damping is minimized
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