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Electromechanical Modeling of a Piezoelectric Vibration Energy Harvesting Microdevice Based on Multilayer Resonator for Air Conditioning Vents at Office Buildings

机译:基于多层谐振器的办公楼空调通风口压电振动能量采集微装置的机电建模

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Piezoelectric vibration energy harvesting (pVEH) microdevices can convert the mechanical vibrations to electrical voltages. In the future, these microdevices can provide an alternative to replace the electrochemical batteries, which cause contamination due to their toxic materials. We present the electromechanical modeling of a pVEH microdevice with a novel resonant structure for air conditioning vents at office buildings. This electromechanical modeling includes different multilayers and cross-sections of the microdevice resonator as well as the air damping. This microdevice uses a flexible substrate and it does not include toxics materials. The microdevice has a resonant structure formed by multilayer beams and U-shape proof mass of UV-resin (730 μm thickness). The multilayer beams contain flexible substrates (160 μm thickness) of polyethylene terephthalate (PET), two aluminum electrodes (100 nm thickness), and a ZnO layer (2 μm thickness). An analytical model is developed to predict the first bending resonant frequency and deflections of the microdevice. This model considers the Rayleigh and Macaulay methods, and the Euler-Bernoulli beam theory. In addition, the electromechanical behavior of the microdevice is determined through the finite element method (FEM) models. In these FEM models, the output power of the microdevice is obtained using different sinusoidal accelerations. The microdevice has a resonant frequency of 60.3 Hz, a maximum deflection of 2.485 mm considering an acceleration of 1.5 m/s 2 , an output voltage of 2.854 V and generated power of 37.45 μW with a load resistance of 217.5 kΩ. An array of pVEH microdevices connected in series could be used to convert the displacements of air conditioning vents at office buildings into voltages for electronic devices and sensors.
机译:压电振动能量收集(pVEH)微型设备可以将机械振动转换为电压。将来,这些微型设备可以提供替代电化学电池的替代方案,而电化学电池由于其有毒材料而导致污染。我们介绍了pVEH微型设备的机电模型,该模型具有用于办公大楼空调通风口的新型谐振结构。这种机电模型包括微器件谐振器的不同多层和横截面以及空气阻尼。此微型设备使用柔性衬底,并且不包含有毒物质。微型器件具有由多层光束和UV树脂的U型检测质量(厚度为730μm)形成的谐振结构。多层梁包含聚对苯二甲酸乙二醇酯(PET)的柔性基板(厚度为160μm),两个铝电极(厚度为100 nm)和ZnO层(厚度为2μm)。开发了一个分析模型来预测微器件的第一弯曲共振频率和挠度。该模型考虑了瑞利和麦考利方法以及欧拉-伯努利梁理论。此外,通过有限元方法(FEM)模型确定微设备的机电行为。在这些FEM模型中,使用不同的正弦加速度获得微型设备的输出功率。该微型器件的谐振频率为60.3 Hz,考虑到1.5 m / s 2的加速度,最大挠度为2.485 mm,输出电压为2.854 V,产生的功率为37.45μW,负载电阻为217.5kΩ。串联连接的一系列pVEH微型设备可用于将办公楼中空调通风口的位移转换成电子设备和传感器的电压。

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