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采用粘性聚合物工艺制备的用于高频超声的1-3连通性压电陶瓷-聚合物复合换能器。

1-3 connectivity piezoelectric ceramic-polymer composite transducers made with viscous polymer processing for high frequency ultrasound.

作者信息

Abrar A, Zhang D, Su B, Button T W, Kirk K J, Cochran S

机构信息

Microscale Sensors, School of ICT (EEP), Division of Electronic Engineering and Physics, University of Paisley, Paisley PA1 2BE, UK.

出版信息

Ultrasonics. 2004 Apr;42(1-9):479-84. doi: 10.1016/j.ultras.2004.02.008.

Abstract

Potential applications of high frequency ultrasound exist because of the high spatial resolution consequent upon short wavelength. The frequencies of interest, typically from 25 MHz upwards, are easily supported by modern instrumentation but the capabilities of ultrasonic transducers have not kept pace and the transducers in high frequency commercial ultrasonic systems are still made with single-phase crystal, ceramic or piezopolymer materials. Despite potential performance advantages, the 1-3 connectivity piezoelectric ceramic-polymer composite materials now widely used at lower ultrasonic frequencies have not been adopted because of manufacturing difficulties. These difficulties are centred on fabrication of the 1-3 piezoceramic bristle-block comprising tall, thin pillars upstanding from a supporting stock. Fabrication techniques which have been explored already include injection moulding, mechanical dicing, and laser machining. Here, we describe an alternative technique based on viscous polymer processing (VPP) to produce net shape ceramic bristle-blocks. VPP produces green-state ceramic with rheological properties suitable for embossing. We outline how this can be created then report on our work to fabricate PZT bristle-blocks with lateral pillar dimensions of the order of 50 microm and height-to-width ratios of the order of 10. These have been backfilled with low pre-cure viscosity polymer and made into complete 1-3 piezocomposite transducer elements. We outline the performance of the transducers in terms of electrical impedance and pulse-echo behaviour and show that it corresponds well with computer modelling. We conclude that VPP is a promising technique to allow the established advantages of piezocomposite material to be exploited at higher frequencies than have been possible so far.

摘要

由于短波长带来的高空间分辨率,高频超声存在潜在应用。通常从25MHz及以上的感兴趣频率很容易被现代仪器所支持,但超声换能器的能力却未能跟上,高频商用超声系统中的换能器仍由单相晶体、陶瓷或压电聚合物材料制成。尽管具有潜在的性能优势,但目前在较低超声频率下广泛使用的1-3连通性压电陶瓷-聚合物复合材料由于制造困难而未被采用。这些困难集中在1-3压电陶瓷刷毛块的制造上,该刷毛块由从支撑体直立的高而细的柱体组成。已经探索的制造技术包括注塑成型、机械切割和激光加工。在这里,我们描述了一种基于粘性聚合物加工(VPP)的替代技术,以生产净形陶瓷刷毛块。VPP生产出具有适合压花流变性能的生坯陶瓷。我们概述了如何实现这一点,然后报告我们制造横向柱体尺寸约为50微米、高宽比约为10的PZT刷毛块的工作。这些刷毛块已用低预固化粘度聚合物回填,并制成完整的1-3压电复合换能器元件。我们根据电阻抗和脉冲回波行为概述了换能器的性能,并表明其与计算机建模结果吻合良好。我们得出结论,VPP是一种有前途的技术,能够在比目前更高的频率下利用压电复合材料的既定优势。

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