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PIEZOELECTRET FOAM-BASED VIBRATION ENERGY HARVESTER FOR LOW- POWER ENERGY GENERATION

机译:基于压电陶瓷泡沫的振动能量采集器,用于低能耗发电

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The use of energy harvesting systems to provide power to low-power electronic devices has the potential to create autonomous, self-powered electronics. While research has been performed to study the harvesting of ambient energy through a wide variety of transduction mechanisms, this paper presents the investigation of a novel material for vibration-based energy harvesting. Piezoelectret foam, a polymer-based electret material exhibiting piezoelectric properties, is investigated for low-power energy generation. An overview of the fabrication and operation of piezoelectret foams is first given. Mechanical testing is then performed to evaluate the tensile properties of the material, where anisotropy in the length direction is found along with Young's moduli between 0.5 - 1 GPa and tensile strengths from 35-70 MPa. Dynamic electromechanical characterization is performed in order to measure the piezoelectric d_(33) coefficient of the foam over a wide frequency range. The d_(33) coefficient is found to be relatively constant at 35 pC/N from 5 Hz - 1 kHz. Lastly, energy harvesting tests are performed to evaluate the ability of piezoelectric foam to harvest vibration energy. Frequency response measurements of foam samples excited along the length direction confirm the anisotropic behavior of the material. Harmonic excitation of a pre-tensioned 15.2 cm x 15.2 cm sample at a frequency of 60 Hz and displacement of ± 73 μrn yields an average power of 5.8 μW delivered to a 1 mF storage capacitor through a simple diode bridge rectifier. The capacitor is charged to 4.67 V in 30 minutes, proving the ability of piezoelectret foam to supply power to low-power electronics.
机译:使用能量收集系统为低功率电子设备提供电源有可能创建自主的,自供电的电子设备。尽管已经进行了各种研究来研究通过多种换能机制收集环境能量的方法,但本文还是对基于振动的能量收集的新型材料进行了研究。压电驻极体泡沫是一种具有压电性能的聚合物基驻极体材料,已被研究用于产生低功率能量。首先概述压电驻极体泡沫的制造和操作。然后进行机械测试以评估材料的拉伸性能,其中发现长度方向的各向异性以及0.5-1 GPa之间的杨氏模量和35-70 MPa的拉伸强度。为了在很宽的频率范围内测量泡沫的压电d_(33)系数,进行了动态机电表征。发现d_(33)系数从5 Hz-1 kHz在35 pC / N时相对恒定。最后,进行能量收集测试以评估压电泡沫收集振动能量的能力。沿长度方向激发的泡沫样品的频率响应测量结果证实了材料的各向异性行为。以60 Hz的频率和±73μm的位移对预拉伸的15.2 cm x 15.2 cm样品进行谐波激励,可以通过一个简单的二极管桥式整流器将5.8μW的平均功率传递给1 mF的存储电容器。该电容器在30分钟内充电到4.67 V,证明了压电驻极体泡沫能够为低功率电子设备供电。

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