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THE APPLICATION OF ELECTRODE DESIGN IN VIBRATING PIEZOCERAMIC PLATE FOR ENERGY HARVESTING SYSTEM

机译:电极设计在振动能量收集系统中的压电陶瓷中的应用

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The energy harvesting system of piezoceramic plate is studied on the electrode configuration to improve the electromechanical transferring efficiency. The piezoceramic plate is used to perform the vibration characteristics by experimental measurements and finite element method (FEM). Thereafter, the dynamic characteristics and the electromechanical coupling efficiency of the piezoelectric energy harvesting system are studied by the electrode design method of the piezoceramic plate. Several experimental techniques are used to measure the dynamic characteristics of piezoceramic plate. First, the full-filed optical technique, amplitude-fluctuation electronic speckle pattern interferometry (AF-ESPI), can measure simultaneously the resonant frequencies and mode shapes for out-of-plane and in-plane vibrations. Second, the pointwisely measuring system, laser Doppler vibrometer (LDV), can obtain resonant frequencies by dynamic signal swept-sine analysis. Third, the correspondent in-plane resonant frequencies and anti-resonant frequencies are obtained by impedance analysis. The experimental results of vibration characteristics are verified with numerical calculations. Besides the dynamic characteristics of piezoceramic plates are analyzed in converse piezoelectric effect, the direct piezoelectric effect of piezoceramic plates are excited by shaker to generate the electric voltage. It has excellent consistence between resonant frequencies and mode shapes on the vibration characteristics by experimental measurements and finite element numerical calculations. In this study, the Electrical Potential Gradient (EPG) calculated by FEM is proposed to evaluate the electromechanical coupling efficiency of piezoceramic plate on the specific vibration mode. The correspondent electrode configuration, which is designed by EPG, can produce the best electromechanical transfer both in direct and converse piezoelectric effects. It is concluded that the vibration characteristics of piezoelectric materials have excellent consistence determined by experimental measurements and FEM.
机译:研究了压电陶瓷板的能量收集系统的电极结构,以提高机电传递效率。压电陶瓷板用于通过实验测量和有限元方法(FEM)来执行振动特性。此后,通过压电陶瓷板的电极设计方法研究了压电能量采集系统的动态特性和机电耦合效率。几种实验技术用于测量压电陶瓷板的动力学特性。首先,成熟的光学技术,振幅波动电子散斑图干涉仪(AF-ESPI),可以同时测量平面外和平面内振动的共振频率和模态。其次,逐点测量系统激光多普勒振动计(LDV)可以通过动态信号扫频正弦分析获得共振频率。第三,通过阻抗分析获得相应的面内谐振频率和反谐振频率。通过数值计算验证了振动特性的实验结果。除了用逆压电效应分析压电陶瓷板的动态特性外,振动器还激发压电陶瓷板的直接压电效应,以产生电压。通过实验测量和有限元数值计算,它在振动特性上的共振频率和振型之间具有极好的一致性。在这项研究中,提出了通过有限元法计算的电势梯度(EPG)来评估压电陶瓷板在特定振动模式下的机电耦合效率。由EPG设计的相应电极配置可在直接和反向压电效应中产生最佳的机电转移。结论是,压电材料的振动特性具有优异的一致性,这是通过实验测量和有限元方法确定的。

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