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ENERGY HARVESTING BY VIBRATIONS WITH MEMS PIEZOELECTRIC BENDERS

机译:MEMS压电弯管通过振动进行能量收集

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摘要

Piezoelectric micro benders are fabricated and tested to demonstrate energy generating performance. Trapezoidal and diagonal unimorph PZT benders with an interdigitated electrode pattern are utilized. The d_(33) mode design is beneficial for the micro energy harvesting devices because it can generate higher voltage than that of the d_(31) mode design. It can also eliminate a bottom electrode by only using an interdigitated top electrode which facilitates fabrication, as opposed to the d_(31) mode design that requires both top and bottom electrodes. The MEMS benders consist of layers of SiO_2/SiN_x/ZrO_2/PZT, and a top Au/Cr interdigitated electrode. The experimental results indicate that the fundamental frequencies of the micro benders are about 9.1 kHz for the trapezoidal bender and 18.48 kHz for the diagonal bender, respectively. The micro trapezoidal bender can generate power of approximately 1.4μW into a 680 kΩ resistive load at the resonant frequency. The diagonal bender can generate power of about 18.2 μW into a 100 kΩ resistive load at the resonant frequency.
机译:压电微型弯管机经过制造和测试以证明其发电性能。使用具有叉指状电极图案的梯形和对角线单压电晶片PZT弯曲机。 d_(33)模式设计对微能量采集设备有利,因为它可以产生比d_(31)模式设计更高的电压。与仅需要顶部和底部电极的d_(31)模式设计相反,它还可以通过仅使用便于制造的叉指式顶部电极来消除底部电极。 MEMS弯曲机由SiO_2 / SiN_x / ZrO_2 / PZT层和顶部的Au / Cr叉指电极组成。实验结果表明,梯形弯曲机的微型弯曲机的基本频率分别为9.1 kHz和对角弯曲机的基本频率为18.48 kHz。微型梯形弯曲机可以在谐振频率下向680kΩ的电阻负载产生约1.4μW的功率。对角弯曲机可在谐振频率下向100kΩ电阻负载产生约18.2μW的功率。

著录项

  • 来源
  • 会议地点 San Diego CA(US);San Diego CA(US);San Diego CA(US);San Diego CA(US);San Diego CA(US)
  • 作者单位

    Department of Mechanical Engineering and Materials Science Vibration and Control Laboratory Mechanical Engineering and Materials Science Department University of Pittsburgh, Pittsburgh, Pennsylvania 15261, U.S.A.;

    Department of Mechanical Engineering and Materials Science Vibration and Control Laboratory Mechanical Engineering and Materials Science Department University of Pittsburgh, Pittsburgh, Pennsylvania 15261, U.S.A.;

    Department of Mechanical Engineering and Materials Science Vibration and Control Laboratory Mechanical Engineering and Materials Science Department University of Pittsburgh, Pittsburgh, Pennsylvania 15261, U.S.A.;

    Department of Mechanical Engineering and Materials Science Vibration and Control Laboratory Mechanical Engineering and Materials Science Department University o;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程设计;
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