Brand Felix, Drese Klaus Stefan
Institute of Sensor and Actuator Technology, Coburg University of Applied Sciences and Arts, Am Hofbräuhaus 1b, 96450 Coburg, Germany.
Sensors (Basel). 2024 Mar 1;24(5):1630. doi: 10.3390/s24051630.
Optoacoustics is a metrology widely used for material characterisation. In this study, a measurement setup for the selective determination of the frequency-resolved phase velocities and attenuations of longitudinal waves over a wide frequency range (3-55 MHz) is presented. The ultrasonic waves in this setup were excited by a pulsed laser within an absorption layer in the thermoelastic regime and directed through a layer of water onto a sample. The acoustic waves were detected using a self-built adaptive interferometer with a photorefractive crystal. The instrument transmits compression waves only, is low-contact, non-destructive, and has a sample-independent excitation. The limitations of the approach were studied both by simulation and experiments to determine how the frequency range and precision can be improved. It was shown that measurements are possible for all investigated materials (silicon, silicone, aluminium, and water) and that the relative error for the phase velocity is less than 0.2%.
光声技术是一种广泛用于材料表征的计量学方法。在本研究中,提出了一种用于在宽频率范围(3 - 55 MHz)内选择性测定纵波频率分辨相速度和衰减的测量装置。该装置中的超声波由脉冲激光在热弹性区域的吸收层内激发,并通过一层水导向样品。使用带有光折变晶体的自制自适应干涉仪检测声波。该仪器仅传输压缩波,低接触、无损且具有与样品无关的激发方式。通过模拟和实验研究了该方法的局限性,以确定如何提高频率范围和精度。结果表明,对所有研究材料(硅、硅酮、铝和水)都可以进行测量,并且相速度的相对误差小于0.2%。