Powell D J, Hayward G, Ting R Y
Weidlinger Assoc. Inc., Los Altos, CA.
IEEE Trans Ultrason Ferroelectr Freq Control. 1998;45(3):667-77. doi: 10.1109/58.677611.
Multi-layered transducer structures offer the potential of improved performance in terms of increased transmit sensitivity, greater bandwidth, and enhanced reception characteristics. Unfortunately, the successful design of such devices is often difficult, owing to the complex interaction between the active piezoelectric layers and passive intermediate interface layers. Furthermore, in many practical applications, the loading effects imposed by the electrical drive circuitry often limit the performance improvements that may be physically realized. This paper describes the development of a comprehensive, unidimensional modeling approach. This model may be employed to facilitate the analysis and subsequent optimization of laminated transducer assemblies. The devices currently under consideration include both piezoceramic and piezopolymer configurations, as well as alternative piezocomposite designs. The effects of varying bondline thickness and the introduction of passive interface layers are examined, as is the influence of the electrical load circuitry on overall system response. The ability to accurately predict the response of stacked piezoelectric structures is demonstrated through extensive comparison of experimental and theoretical responses. This paper concludes by highlighting the important role that modeling plays in the design, fabrication, and optimization of complex multi-layered transducer assemblies.
多层换能器结构在提高发射灵敏度、增加带宽和增强接收特性方面具有提升性能的潜力。不幸的是,由于有源压电层和无源中间界面层之间复杂的相互作用,此类器件的成功设计往往很困难。此外,在许多实际应用中,电驱动电路施加的负载效应常常限制了在物理上可实现的性能提升。本文描述了一种全面的一维建模方法的开发。该模型可用于促进层压换能器组件的分析和后续优化。目前正在考虑的器件包括压电陶瓷和压电聚合物配置,以及替代的压电复合材料设计。研究了不同粘结层厚度和引入无源界面层的影响,以及电负载电路对整个系统响应的影响。通过对实验响应和理论响应的广泛比较,证明了准确预测堆叠压电结构响应的能力。本文最后强调了建模在复杂多层换能器组件的设计、制造和优化中所起的重要作用。