Full set of complex material constants for porous piezoelectric ceramics

Andrey Rybianets, Anastasia Rybianets, A. Nasedkin
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Abstract

Porous piezoelectric ceramics are important for a variety of applications such as medical ultrasonic devices, non-destructive testing, underwater acoustics etc. In this paper a line of proprietary porous piezoelectric ceramics with 3-0/3-3 connectivity types were systematically studied. Complex sets of elastic, dielectric and piezoelectric coefficients of the porous piezoelectric ceramics were measured by ultrasonic and impedance spectroscopy methods using Piezoelectric Resonance Analysis (PRAP) software. Special attention was paid to the microstructure/properties interrelation and accurate determination of low-Q porous piezoelectric ceramics parameters including losses and dispersion. It was shown, that at any connectivity type and porosity up to 70 % the real structures of porous piezoelectric ceramics are close to the matrix medium structure with continuous piezoelectric ceramic skeleton. Finite element modeling of effective constants of the porous piezoelectric ceramics was performed using ANSYS software package. Critical comparison of numerical FEM calculations with the results of various approximated formulas, unit cell models and experimental data for different porous piezoelectric ceramics was carried out. Microstructural and physical mechanisms of losses in porous piezoelectric ceramics, as well as technological aspects of its large-scale manufacture and application in ultrasonic transducers were considered. A line of high-performance HIFU, NDT and medical diagnostics ultrasonic transducers made from porous piezoelectric ceramics was manufactured and tested.
多孔压电陶瓷的全套复材料常数
多孔压电陶瓷在医用超声器件、无损检测、水下声学等领域有着重要的应用。本文系统地研究了具有3-0/3-3连接类型的专有多孔压电陶瓷系列。利用压电共振分析(PRAP)软件,采用超声和阻抗谱法测量了多孔压电陶瓷的弹性系数、介电系数和压电系数。重点研究了低q多孔压电陶瓷的微观结构与性能之间的相互关系以及损耗和色散等参数的精确测定。结果表明,在任何连通性和孔隙率高达70%的情况下,多孔压电陶瓷的真实结构都接近于具有连续骨架的基质介质结构。利用ANSYS软件包对多孔压电陶瓷的有效常数进行了有限元建模。对不同多孔压电陶瓷的数值有限元计算结果与各种近似公式、单元胞模型和实验数据进行了临界比较。讨论了多孔压电陶瓷损耗的微观结构和物理机理,以及其在超声换能器中规模化生产和应用的技术问题。研制了一种高性能的多孔压电陶瓷超声换能器,并对其进行了测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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