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Sensitivity-Improved Ultrasonic Sensor for 3D Imaging of Seismic Physical Model Using a Compact Microcavity

机译:使用紧凑型微腔对地震物理模型进行3D成像的灵敏度改进型超声波传感器

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摘要

A sensitivity-improved ultrasonic sensor is proposed and demonstrated experimentally in this present study. The device is comprised only a fiber-optic microcavity that is formed by discharging a short section of hollow core fiber (HCF). The key to ensuring the success of the sensor relies on the preprocessing of hydrogen loading for HCF. When discharging the HCF, the hydrogen is heated up during the formation of the air bubble, which enlarges the bubble diameter, smoothens its surfaces simultaneously and decreases Young’s modulus of the material of the bubble. Ultimately, this results in the probe being highly sensitive to ultrasound with a SNR of 69.28 dB. Once the compact air cavity is formed between the end face of the leading-in fiber and the top wall of the bubble, a well-defined interference spectrum is achieved based on the Fabry–Perot interference. By using spectral side-band filtering technology, we detect the ultrasonic waves reflected by the seismic physical model (SMF) and then reconstruct its three-dimensional image.
机译:提出了一种灵敏度提高的超声传感器,并在本研究中进行了实验验证。该设备仅包含一个光纤微腔,该微腔是通过排出一小段空心纤维(HCF)形成的。确保传感器成功的关键在于对HCF进行氢气装载的预处理。排出HCF时,氢气在气泡形成过程中会被加热,这会增大气泡直径,同时使表面光滑并降低气泡材料的杨氏模量。最终,这导致探头对超声高度敏感,SNR为69.28 dB。一旦在导入光纤的端面和气泡的顶壁之间形成了紧凑的空气腔,就可以基于Fabry-Perot干涉获得清晰的干涉光谱。通过使用频谱边带滤波技术,我们检测由地震物理模型(SMF)反射的超声波,然后重建其三维图像。

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