Department of Electrical & Computer Engineering, Lawrence Technological University, Southfield, MI 48075, USA.
Sensors (Basel). 2022 Aug 4;22(15):5824. doi: 10.3390/s22155824.
In shear wave-based material mechanical characterization, the transmit/receiver transducer is generally in contact with the material through a coupling medium. In many applications, especially in biological tissue-related characterization, the application of the coupling medium and the contact method are not ideal, sometimes even unacceptable, due to contamination or stress response concerns. To avoid contact, we developed a 1 MHz air-coupled focused PZT transducer as a moderate pressure generator that could induce a shear wave in soft material and a fiber optic-based Sagnac system for the detection of the propagating shear wave. A calibration indicated that the fabricated air-coupled focused PZT transducer could generate pressure above 1 KPa within its focal range. This pressure is three to five times as much as the pressure generated by a 1 MHz air-coupled transducer currently available on the market. The integrated system was demonstrated through shear wave generation by the fabricated air-coupled PZT transducer and shear wave detection by the fiber optic Sagnac system in a nylon membrane. The results demonstrated the capability of the integrated system in non-contact material mechanical characterization, such as in material modulus measurement.
在基于剪切波的材料力学特性表征中,发射/接收换能器通常通过耦合介质与材料接触。在许多应用中,特别是在与生物组织相关的特性表征中,由于存在污染或应力响应等问题,耦合介质和接触方法的应用并不理想,有时甚至无法接受。为了避免接触,我们开发了一种 1MHz 空气耦合聚焦 PZT 换能器作为中等压力发生器,它可以在软材料中产生剪切波,并采用光纤 Sagnac 系统来检测传播的剪切波。校准表明,所制造的空气耦合聚焦 PZT 换能器在其焦域内可以产生超过 1kPa 的压力。该压力是目前市场上可用的 1MHz 空气耦合换能器产生压力的三到五倍。通过在尼龙膜中使用所制造的空气耦合 PZT 换能器产生剪切波以及使用光纤 Sagnac 系统检测剪切波,该集成系统得到了验证。结果表明,该集成系统具有在非接触式材料力学特性表征方面的能力,例如在材料模量测量方面。