Zhou Q F, Cannata J, Kirk Shung K
Department of Biomedical Engineering and NIH transducer Resource Center, University of Southern California, Los Angeles, CA 90089, USA.
Ultrasonics. 2006 Dec 22;44 Suppl 1:e607-11. doi: 10.1016/j.ultras.2006.05.171. Epub 2006 Jun 9.
Using inversion domain engineering controlled by heating temperature, the LiNbO(3) (LNO) piezoelectric plate with both odd and even-order thickness-extensional modes can be excited simultaneously. Therefore, the inversion layer ultrasound transducer is expected to be capable of operating over a wider frequency range. In this paper, the electrical impedance and the acoustic characteristics of LiNbO(3) (LNO) inversion layer transducer have been studied by finite element modeling (FEM). The transducer designed for this study uses a 36 degrees rotated Y-cut LiNbO(3) thin plate with an active element thickness of approximately 100 microm. First the electrical and elastic properties of the 36 degrees rotated Y-cut LNO were obtained by transforming a basic piezoelectric matrix for Z-cut LNO. In order to validate the FEM using the transformed properties several pieces of pure and 50% inversion layer LNO were tested on the electrical impedance analyzer. The modeled impedance characteristics were consistent with the measured data. Next the model was used to design 50-60 MHz transducers using pure and 30% inversion LNO. Two lambda/4 matching layers and a Tungsten loaded epoxy backing were used in these designs. The modeled results show that an over 90% bandwidth transducer can be made with proper matching and 30% inversion layer.
通过利用加热温度控制的反转畴工程,可以同时激发具有奇次和偶次厚度伸缩模式的铌酸锂(LNO)压电板。因此,反转层超声换能器有望能够在更宽的频率范围内工作。本文通过有限元建模(FEM)研究了铌酸锂(LNO)反转层换能器的电阻抗和声学特性。本研究设计的换能器使用了一个36°旋转Y切的铌酸锂薄板,有源元件厚度约为100微米。首先,通过转换Z切LNO的基本压电矩阵,获得了36°旋转Y切LNO的电学和弹性特性。为了使用转换后的特性验证有限元模型,在电阻抗分析仪上测试了几片纯的和50%反转层的LNO。建模的阻抗特性与测量数据一致。接下来,该模型被用于设计使用纯LNO和30%反转LNO的50 - 60 MHz换能器。这些设计中使用了两个λ/4匹配层和一个钨负载环氧树脂背衬。建模结果表明,通过适当的匹配和30%的反转层,可以制造出带宽超过90%的换能器。