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Optimization of piezoelectric ultrasound emitter transducers for underwater communications

机译:水下通信压电超声发射极换能器的优化

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摘要

Ultrasound transducers are typically based on piezoelectric materials, due to their good response at high frequencies. Depending on the application, ceramics, polymers and composite materials can be used. In this work, an optimization study of ultrasound transducers for underwater communications is addressed, focusing on a piston type emitter transducer operating in thickness mode (d33). The piston is constituted by an active element disk with optimized dimensions. It is discussed how the acoustic impedance, thickness, resonance frequency and structure affect the transducer performance. This work allows a better understanding of the emitter transducer characteristics allowing reaching the optimum point of operation for specific applications. Focusing on underwater communication, the acoustic channel is defined and the transducer is optimized by finite element computer simulations. The results were compared with experimental tests, which show that four-layer structures increase up to 16 dB in performance versus single-layer.
机译:超声换能器通常是基于压电材料,由于在高频率下的良好的响应。根据不同的应用,陶瓷,可使用的聚合物和复合材料。在这项工作中,超声换能器的水下通信的优化研究被寻址时,着眼于在厚度模式(D33)的活塞型的发射换能器的操作。活塞由具有优化尺寸的有源元件磁盘构成。据所讨论的声阻抗,厚度,谐振频率和结构如何影响换能器的性能。这项工作可以更好地了解发射换能器的特性,使其达到操作的最佳点,针对特定应用。着眼于水下通信,声学信道被定义并且换能器通过有限元计算机模拟进行了优化。结果与实验测试,这表明四层结构在性能与单层增加至16分贝进行比较。

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