首页> 外文会议>2016 Joint IEEE International Symposium on the Applications of Ferroelectrics, European Conference on Application of Polar Dielectrics, and Piezoelectric Force Microscopy Workshop >Electromechanical characterization of piezoceramic elements around resonance frequencies at high excitation levels and different thermodynamic conditions
【24h】

Electromechanical characterization of piezoceramic elements around resonance frequencies at high excitation levels and different thermodynamic conditions

机译:压电陶瓷元件在高激发水平和不同热力学条件下共振频率附近的机电特性

获取原文
获取原文并翻译 | 示例

摘要

Electromechanical characterization of piezoceramic bulk elements around resonance is usually done with low-level continuous excitation signals at room temperature, but in real applications such elements are driven with different types of electrical signals, usually at higher levels and at different ambient temperatures. Both homemade and commercial soft and hard PZT piezoceramic elements were characterized using the established characterization methods that include the measurements of electrical admittance and surface displacement of the piezoceramic elements around the series resonance frequencies of two modes of vibration (radial and thickness extensional). The measurements included fast frequency sweeps at constant voltage excitation levels, burst measurements, at different temperatures and at different levels of excitation. A novel method for electromechanical characterization of piezoceramic elements that utilizes the resonance frequency tracking at different excitation levels (electric fields up to 5 kV/m, currents up to 1.3 A at resonance) and temperature conditions (up to 150 °C) has been proposed. The main idea is to keep the investigated element in resonance as the excitation level changes by constant tracking of its resonance frequency. The electromechanical parameters of the considered elements change mostly due to the nonlinear effects and the changes due to different thermodynamic conditions can be neglected when fast algorithm is applied. The decrease of the input electrical admittance magnitude is more expressed than the change of the resonance frequency when algorithm is applied.
机译:压电陶瓷块体元件在共振附近的机电特性通常是在室温下使用低电平连续激励信号完成的,但在实际应用中,此类元件是通过不同类型的电信号来驱动的,通常在较高水平和不同环境温度下。自制和商用软,硬PZT压电陶瓷元件均使用已建立的表征方法进行表征,包括在两种振动模式(径向和厚度扩展)的串联共振频率附近测量压电陶瓷元件的电导率和表面位移。测量包括在恒定电压激励水平下的快速频率扫描,在不同温度和不同激励水平下的突发测量。提出了一种压电陶瓷元件机电特性的新方法,该方法利用了在不同激发水平(电场最高5 kV / m,共振时电流最高1.3 A)和温度条件(温度最高150°C)下的共振频率跟踪。主要思想是通过不断跟踪其共振频率,随着激发水平的变化使所研究的元素保持共振状态。所考虑元素的机电参数变化主要是由于非线性效应而引起的,而采用快速算法时可以忽略由于不同热力学条件而引起的变化。当应用算法时,输入电导率幅度的减小比谐振频率的变化更能表达。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号