Research and application of an improved internal thrust force measurement system for rock and soil mass based on OFDR

Internal thrust force of unstable rock and soil mass is an essential parameter for prediction of many geological hazard. Currently, fiber bragg grating (FBG) and optical time-domain reflectometer (OTDR) are widely used to measure internal stress of unstable rock and soil mass. However, these methods...

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Main Authors: Pu Wang, Yimin Liu
Format: Article
Language:English
Published: Taylor & Francis Group 2021-01-01
Series:Geomatics, Natural Hazards & Risk
Subjects:
Online Access:http://dx.doi.org/10.1080/19475705.2021.1927859
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spelling doaj-f7d7e9ef420140b7b60dacbb2de5be0b2021-06-11T09:33:07ZengTaylor & Francis GroupGeomatics, Natural Hazards & Risk1947-57051947-57132021-01-011211426144810.1080/19475705.2021.19278591927859Research and application of an improved internal thrust force measurement system for rock and soil mass based on OFDRPu Wang0Yimin Liu1University School of Civil Engineering, Tianjin UniversitySchool of Mechanic Engineering, Tianjin University of TechnologyInternal thrust force of unstable rock and soil mass is an essential parameter for prediction of many geological hazard. Currently, fiber bragg grating (FBG) and optical time-domain reflectometer (OTDR) are widely used to measure internal stress of unstable rock and soil mass. However, these methods have disadvantages such as low spatial resolution and the paucity of distributed measurements. This paper develops a quasi-distributed thrust measurement system based on an optical frequency domain reflectometer (OFDR). Firstly, we design an optical fiber stress sensor head using the characteristics of the optical fiber microbending effect. And then, the cubic spline interpolation method is used to compensate for the nonlinear effects of the OFDR. Finally, we implement a laboratory experiment of lateral stress to make error calibration. As a result, the OFDR sensing system achieved a spatial resolution of 20 cm by using a 500 m test fiber, maximum measurement pressure reached 1.059 MPa and relative error is 8.9%. We implemented OFDR in the Chenjiagou landslide located at the Three-Gorge of Chongqing in China. The results showed that this system can accurately locate six fiber stress sensors within the landslide over a range of 0 ∼ 420 m, obtaining the lateral thrusts as well.http://dx.doi.org/10.1080/19475705.2021.1927859internal thrust forceofdrquasi-distributed measurement systemchenjiagou landslideoptic micro-bending stress sensors
collection DOAJ
language English
format Article
sources DOAJ
author Pu Wang
Yimin Liu
spellingShingle Pu Wang
Yimin Liu
Research and application of an improved internal thrust force measurement system for rock and soil mass based on OFDR
Geomatics, Natural Hazards & Risk
internal thrust force
ofdr
quasi-distributed measurement system
chenjiagou landslide
optic micro-bending stress sensors
author_facet Pu Wang
Yimin Liu
author_sort Pu Wang
title Research and application of an improved internal thrust force measurement system for rock and soil mass based on OFDR
title_short Research and application of an improved internal thrust force measurement system for rock and soil mass based on OFDR
title_full Research and application of an improved internal thrust force measurement system for rock and soil mass based on OFDR
title_fullStr Research and application of an improved internal thrust force measurement system for rock and soil mass based on OFDR
title_full_unstemmed Research and application of an improved internal thrust force measurement system for rock and soil mass based on OFDR
title_sort research and application of an improved internal thrust force measurement system for rock and soil mass based on ofdr
publisher Taylor & Francis Group
series Geomatics, Natural Hazards & Risk
issn 1947-5705
1947-5713
publishDate 2021-01-01
description Internal thrust force of unstable rock and soil mass is an essential parameter for prediction of many geological hazard. Currently, fiber bragg grating (FBG) and optical time-domain reflectometer (OTDR) are widely used to measure internal stress of unstable rock and soil mass. However, these methods have disadvantages such as low spatial resolution and the paucity of distributed measurements. This paper develops a quasi-distributed thrust measurement system based on an optical frequency domain reflectometer (OFDR). Firstly, we design an optical fiber stress sensor head using the characteristics of the optical fiber microbending effect. And then, the cubic spline interpolation method is used to compensate for the nonlinear effects of the OFDR. Finally, we implement a laboratory experiment of lateral stress to make error calibration. As a result, the OFDR sensing system achieved a spatial resolution of 20 cm by using a 500 m test fiber, maximum measurement pressure reached 1.059 MPa and relative error is 8.9%. We implemented OFDR in the Chenjiagou landslide located at the Three-Gorge of Chongqing in China. The results showed that this system can accurately locate six fiber stress sensors within the landslide over a range of 0 ∼ 420 m, obtaining the lateral thrusts as well.
topic internal thrust force
ofdr
quasi-distributed measurement system
chenjiagou landslide
optic micro-bending stress sensors
url http://dx.doi.org/10.1080/19475705.2021.1927859
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AT yiminliu researchandapplicationofanimprovedinternalthrustforcemeasurementsystemforrockandsoilmassbasedonofdr
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