Gómez Alvarez-Arenas Tomás E
Instituto de Acústica, CSIC, 28006 Madrid, Spain.
IEEE Trans Ultrason Ferroelectr Freq Control. 2004 May;51(5):624-33.
The purpose of this work is threefold: to investigate material requirements to produce impedance matching layers for air-coupled piezoelectric transducers, to identify materials that meet these requirements, and to propose the best solution to produce air-coupled piezoelectric transducers for the low megahertz frequency range. Toward this end, design criteria for the matching layers and possible configurations are reviewed. Among the several factors that affect the efficiency of the matching layer, the importance of attenuation is pointed out. A standard characterization procedure is applied to a wide collection of candidate materials to produce matching layers. In particular, some types of filtration membranes are studied. From these results, the best materials are identified, and the better matching configuration is proposed. Four pairs of air-coupled piezoelectric transducers also are produced to illustrate the performance of the proposed solution. The lowest two-way insertion loss figure is -24 dB obtained at 0.45 MHz. This increases for higher frequency transducers up to -42 dB at 1.8 MHz and -50 at 2.25 MHz. Typical bandwidth is about 15-20%.
研究为空气耦合压电换能器生产阻抗匹配层的材料要求,识别满足这些要求的材料,并提出为低兆赫兹频率范围生产空气耦合压电换能器的最佳解决方案。为此,回顾了匹配层的设计标准和可能的配置。在影响匹配层效率的几个因素中,指出了衰减的重要性。将标准表征程序应用于大量用于生产匹配层的候选材料。特别地,研究了某些类型的过滤膜。根据这些结果,识别出最佳材料,并提出更好的匹配配置。还制作了四对空气耦合压电换能器来说明所提出解决方案的性能。在0.45兆赫兹时获得的最低双向插入损耗值为-24分贝。对于更高频率的换能器,该值会增加,在1.8兆赫兹时达到-42分贝,在2.25兆赫兹时达到-50分贝。典型带宽约为15 - 20%。