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Novel Transducer for Characterization of Low-Impedance Materials

机译:用于表征低阻抗材料的新型传感器

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Piezoelectric materials such as lead-zirconate-titanate (PZT), lead-metaniobate, and piezo-composites are the materials of choice for acoustic imaging in medical diagnosis as well as underwater ultrasonic microphones and underwater sonar. PZT materials have the advantage of having high electro-mechanical coupling, low internal losses and excellent environmental durability. Nonetheless, in order to improve energy transmission the high acoustic impedance of piezoelectric ceramics needs to be matched to the lower acoustic impedance of biological tissues and water. For actuators resonated in their thickness mode, energy transmission can be improved by means of intermediate layers of material of carefully selected thicknesses and acoustic properties. Sometimes a backing layer is also added to the back of the actuator to damp the acoustic back-wave. The process of making these types of transducers is generally costly due to the nature of the manufacturing process and the required level of accuracy. This paper describes an inexpensive method of manufacture low-cost, low-impedance, piezoelectric transducers. The fundamental physical principles behind this new type of sensor-actuator, as well as various examples of imaging low-impedance targets using a prototype of this newly developed sensor-actuator system will be presented.
机译:压电材料,例如锆钛酸铅(PZT),偏钛酸铅和压电复合材料,是医学诊断,水下超声麦克风和水下声纳中声成像的首选材料。 PZT材料具有机电耦合度高,内部损耗低以及出色的环境耐久性的优点。尽管如此,为了改善能量传输,压电陶瓷的高声阻抗需要与生物组织和水的低声阻抗相匹配。对于以厚度模式共振的执行器,可以通过精心选择厚度和声学特性的中间材料层来改善能量传输。有时还会在执行器的背面添加一个背衬层,以衰减声学回波。由于制造过程的性质和所需的精度水平,制造这些类型的换能器的过程通常是昂贵的。本文介绍了一种廉价的制造低成本,低阻抗压电换能器的方法。将介绍这种新型传感器执行器的基本物理原理,以及使用此新开发的传感器执行器系统的原型对低阻抗目标进行成像的各种示例。

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