Thermoelastic wave generation and its longitudinal wave propagation measurement by a microscopic optical interferometer

干涉测量 迈克尔逊干涉仪 光学 干涉可见度 物理 天文干涉仪 热弹性阻尼 强度干涉仪 流离失所(心理学) 环形激光陀螺仪 声干涉仪 激光器 波传播 纵波 机械波 热的 气象学 心理学 心理治疗师
作者
Kazuki Tamura,Ken‐ya Hashimoto,Shinpei Okawa
出处
期刊:Ultrasonics [Elsevier BV]
卷期号:: 107319-107319
标识
DOI:10.1016/j.ultras.2024.107319
摘要

Laser ultrasonics is a noncontact measurement method that uses a laser-induced elastic wave source in combination with an optical surface displacement-tracking system. This study compared the performances of two optical interferometers with different characteristics when applied to measurement of pulsed thermoelastic waves. The surface displacement-tracking system was designed to measure the center of the microscopic view. A pulsed laser beam irradiated a black ink layer to generate the thermoelastic waves. The out-of-plane displacement on the axially opposite side was then measured using either a Michelson interferometer or a Sagnac interferometer. The objective lens of the system was of a type commonly used in biological observations. The Michelson interferometer estimated a maximum displacement of 0.43 nm and a maximum sound pressure of 24.7 kPa. The signal-to-noise ratios from 16 averages were 14.9 dB (Michelson interferometer) and 19.2 dB (Sagnac interferometer). Furthermore, this paper compares the performance of the numerically estimated Sagnac interferometer outputs calculated from the measured Michelson interferometer outputs with the experimentally obtained Sagnac interferometer outputs. The numerically estimated Sagnac interferometer's output was shown to be identical to the experimentally acquired output. The Michelson interferometer requires a higher average operating frequency (i.e., it needs a longer data acquisition time), although this interferometer does offer superior displacement output linearity. This property enables calculation of the sound pressure from the displacement amplitude. These findings indicated that combination of the measurement points of the Sagnac interferometer with those of the sparsely distributed Michelson interferometer reduced the measurement time when compared with a single use of the Michelson interferometer while also maintaining the data acquisition quality.

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