Xu Ruize, Akay Haluk, Kim Sang-Gook
Massachusetts Institute of Technology, Mechanical Engineering Department, Cambridge, MA 02139, USA.
Research (Wash D C). 2019 Aug 8;2019:1087946. doi: 10.34133/2019/1087946. eCollection 2019.
Vibration energy harvesters based on the resonance of the beam structure work effectively only when the operating frequency window of the beam resonance matches with the available vibration source. None of the resonating MEMS structures can operate with low frequency, low amplitude, and unpredictable ambient vibrations since the resonant frequency goes up very high as the structure gets smaller. Bistable buckled beam energy harvester is therefore developed for lowering the operating frequency window below 100Hz for the first time at the MEMS scale. This design does not rely on the resonance of the MEMS structure but operates with the large snapping motion of the beam at very low frequencies when input energy overcomes an energy threshold. A fully functional piezoelectric MEMS energy harvester is designed, monolithically fabricated, and tested. An electromechanical lumped parameter model is developed to analyze the nonlinear dynamics and to guide the design of the nonlinear oscillator based energy harvester. Multilayer beam structure with residual stress induced buckling is achieved through the progressive residual stress control of the deposition processes along the fabrication steps. Surface profile of the released device shows bistable buckling of 200 which matches well with the amount of buckling designed. Dynamic testing demonstrates the energy harvester operates with 50% bandwidth under 70Hz at 0.5g input, operating conditions that have not been demonstrated by MEMS vibration energy harvesters before.
基于梁结构共振的振动能量采集器只有在梁共振的工作频率窗口与可用振动源匹配时才能有效工作。由于随着结构尺寸变小共振频率会变得非常高,所以没有一种共振微机电系统(MEMS)结构能够在低频、低振幅和不可预测的环境振动下工作。因此,首次在MEMS尺度上开发了双稳态屈曲梁能量采集器,以将工作频率窗口降低到100Hz以下。这种设计不依赖于MEMS结构的共振,而是在输入能量超过能量阈值时,以梁在非常低频率下的大幅突然运动来工作。设计、单片制造并测试了一个功能齐全的压电MEMS能量采集器。开发了一个机电集总参数模型来分析非线性动力学,并指导基于非线性振荡器的能量采集器的设计。通过在制造步骤中对沉积过程进行渐进式残余应力控制,实现了具有残余应力诱导屈曲的多层梁结构。释放后的器件表面轮廓显示出200的双稳态屈曲,与设计的屈曲量非常匹配。动态测试表明,该能量采集器在0.5g输入下,在70Hz以下具有50%的带宽运行,这是以前MEMS振动能量采集器未曾展示过的运行条件。