Tilted fiber Bragg grating fixed in a polypropylene tube for ultrasonic sensing and imaging of simulated geological models

•A fiber ultrasonic sensor based on TFBG is proposed and demonstrated.•TFBG is packaged in a tilted tube resulting great stability and direction dependence.•2D images of models are reconstructed using time lapse changes in reflected signal. A fiber ultrasonic sensor based on tilted fiber Bragg grati...

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Published inOptics and laser technology Vol. 140; p. 107075
Main Authors Gang, Tingting, Zhang, Xuan, Sun, Ruijuan
Format Journal Article
LanguageEnglish
Published Kidlington Elsevier Ltd 01.08.2021
Elsevier BV
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Abstract •A fiber ultrasonic sensor based on TFBG is proposed and demonstrated.•TFBG is packaged in a tilted tube resulting great stability and direction dependence.•2D images of models are reconstructed using time lapse changes in reflected signal. A fiber ultrasonic sensor based on tilted fiber Bragg grating (TFBG) is proposed and demonstrated both in theory and experiment. The sensor probe is packaged in a sturdily tilted polypropylene tube resulting improvements in great stability and direction dependence. In experiments, the proposed sensor performs a high ultrasonic wave (UW) sensitivity and thus it can obtain layers information in rock models. After scanning slope and surface seismic physical models, cross-section imaging of models is achieved finally by data processing and reconstruction.
AbstractList •A fiber ultrasonic sensor based on TFBG is proposed and demonstrated.•TFBG is packaged in a tilted tube resulting great stability and direction dependence.•2D images of models are reconstructed using time lapse changes in reflected signal. A fiber ultrasonic sensor based on tilted fiber Bragg grating (TFBG) is proposed and demonstrated both in theory and experiment. The sensor probe is packaged in a sturdily tilted polypropylene tube resulting improvements in great stability and direction dependence. In experiments, the proposed sensor performs a high ultrasonic wave (UW) sensitivity and thus it can obtain layers information in rock models. After scanning slope and surface seismic physical models, cross-section imaging of models is achieved finally by data processing and reconstruction.
A fiber ultrasonic sensor based on tilted fiber Bragg grating (TFBG) is proposed and demonstrated both in theory and experiment. The sensor probe is packaged in a sturdily tilted polypropylene tube resulting improvements in great stability and direction dependence. In experiments, the proposed sensor performs a high ultrasonic wave (UW) sensitivity and thus it can obtain layers information in rock models. After scanning slope and surface seismic physical models, cross-section imaging of models is achieved finally by data processing and reconstruction.
ArticleNumber 107075
Author Gang, Tingting
Zhang, Xuan
Sun, Ruijuan
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  fullname: Sun, Ruijuan
  organization: School of Science, Xi’an Shiyou University, Xi’an 710065, China
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Keywords Imaging of simulated geological models
Ultrasonic sensing
Tilted fiber Bragg grating
Language English
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Snippet •A fiber ultrasonic sensor based on TFBG is proposed and demonstrated.•TFBG is packaged in a tilted tube resulting great stability and direction dependence.•2D...
A fiber ultrasonic sensor based on tilted fiber Bragg grating (TFBG) is proposed and demonstrated both in theory and experiment. The sensor probe is packaged...
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SubjectTerms Bragg gratings
Data processing
Imaging of simulated geological models
Polypropylene
Seismic stability
Sensors
Tilted fiber Bragg grating
Ultrasonic sensing
Ultrasonic testing
Title Tilted fiber Bragg grating fixed in a polypropylene tube for ultrasonic sensing and imaging of simulated geological models
URI https://dx.doi.org/10.1016/j.optlastec.2021.107075
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