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优化匹配层以扩展水下单晶压电压电复合材料换能器的可用频带。

Optimization of Matching Layers to Extend the Usable Frequency Band for Underwater Single-Crystal Piezocomposite Transducers.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2022 Feb;69(2):803-811. doi: 10.1109/TUFFC.2021.3132390. Epub 2022 Jan 27.

Abstract

The ongoing robotic revolution in oceanic science puts new requirements on sonar technology. Small platforms require compact multi-purpose transducers, with strict requirements on power consumption and heat dissipation. Introducing single-crystal ferroelectrics as the active material of the transmitter can be one way of meeting the new requirements. The large electromechanical coupling coefficient of single crystals can enable an extension of the usable frequency band compared to conventional PZT. For the applications considered in this work, the usable frequency band is restricted by both the transmitted acoustic power and the reactive electrical power. Single crystals as the active materials can double the usable band, but the acoustic matching required for this can be difficult to obtain in practice. We investigated an air-backed, plane 1-3 composite transducer, matched to water by acoustic matching layers. For many applications, the diversity provided by a large usable frequency range is more important than a flat acoustic power response, and the transducer can be used far beyond the -3-dB limit. We defined the usable band by requiring maximum -12-dB ripple in transmitted acoustic power and maximum 50% reactive power. The matching layers were optimized to maximize the usable band according to this definition, in contrast to the conventional approach where matching layers are optimized for maximally flat response. Under the chosen definitions, our modeling showed that with a single crystal as the active material we could achieve 188% usable frequency band relative to the resonance frequency, compared to 121% for a PZT.

摘要

海洋科学领域的机器人革命对声纳技术提出了新的要求。小型平台需要紧凑的多用途换能器,对功耗和散热有严格的要求。将单晶铁电体用作发射器的有源材料可以满足这些新要求。与传统的 PZT 相比,单晶具有较大的机电耦合系数,可以扩展可用频带。对于本工作中考虑的应用,可用频带受到传输声功率和无功电功率的限制。单晶作为有源材料可以将可用带宽增加一倍,但在实际中,这种情况下的声匹配可能很难获得。我们研究了一种空气背衬的平面 1-3 复合材料换能器,通过声匹配层与水匹配。对于许多应用,大的可用频率范围所提供的多样性比平坦的声功率响应更为重要,并且该换能器可以远远超出-3dB 的限制。我们通过要求在传输声功率中最大 -12dB 的纹波和最大 50%的无功功率来定义可用带宽。与传统的匹配层优化方法不同,我们根据这个定义来优化匹配层,以最大化可用带宽。根据所选定义,我们的建模表明,与使用 PZT 相比,使用单晶作为有源材料,我们可以将可用频带相对于共振频率扩展 188%,而 PZT 只能扩展 121%。

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