压电聚合物超声换能器的优化设计

L. Brown
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引用次数: 5

摘要

聚合物压电谐振器的有源面积是决定换能器工作频率、带宽和插入损耗的重要指标。为了优化压电陶瓷材料的换能器效率和带宽,在选择谐振腔厚度、面积、衬底和匹配层方面进行了大量的工作。对于这些材料,通过电调谐压电陶瓷元件到脉冲接收器,并将元件与其前后声学负载进行声学匹配,可以大大提高效率和带宽。压电聚合物具有压电性能弱、内部损耗大、机械品质因数低、声阻抗极低等特点,在不调谐时产生最大带宽。在这项工作中,理论推导报告了优化非调谐压电聚合物元件在共振时最大功率传输的有源面积。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing the design of piezoelectric polymer ultrasound transducers
The active area of a piezoelectric polymer resonator is an important criterion for transducer operating frequency, bandwidth and insertion loss. Much work has been carried out in selecting the resonator thickness, area, backing and matching layers for optimizing transducer efficiency and bandwidth using piezo-ceramic materials. For these materials, efficiency and bandwidth can be greatly enhanced by electrically tuning the piezo-ceramic element to a pulser-receiver and acoustically matching the element to its front and rear acoustic loads. The piezoelectric polymers, with weak piezoelectric properties, high internal losses, low mechanical quality factor and very low acoustic impedance, yield maximum bandwidth when left untuned. In this work, theoretical derivations are reported for optimizing the active area of the untuned piezoelectric polymer element for maximum power transfer at resonance.
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