Utility Tunnel Settlement Monitoring Using Distributed Fiber Optic and Ground Penetrating Radar Technologies
Abstract
1. Introduction
2. Materials and Methods
2.1. Field Site Description
2.2. On-Site Monitoring Scheme Using DFOS and GPR
3. Results and Discussion
3.1. Settlement and Deformation Detection Base on the Fiber Optic Monitoring
3.2. MUT Settlement and Deformation Reasons Analysis Based on GPR Detection
4. Conclusions
- (i)
- The MUT deformation is mainly caused by joint dislocation. The adjacent MUT joint dislocation caused by foundation settlement can be accurately detected by BOFDA. The dislocation development is determined by intermittent river recharge and water infiltration into the foundation. The maximum strain is prone to appearing at the slopes near the riverbed edges.
- (ii)
- After the deformation position is accurately located by BOFDA, the MUT posture can be judged by the FBG monitored data. Rotation, even settlement, and uneven settlement can be observed through the three FBG-based dislocation meters installed on the top and side walls.
- (iii)
- The cause of MUT settlement is the compression of mudstone and collapse of loess. The interlayer delamination cracks caused by the uncoordinated settlement of the strata and the accumulated cracks at the bottom of the MUT can be accurately located by GPR.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| BOFDA | Brillouin frequency domain analysis |
| DFOS | Distributed fiber optic sensing |
| FBG | Fiber Bragg grating |
| GPR | Ground penetrating radar |
| MUT | Multi-purpose utility tunnel |
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| Sections | Strain (×10−6) | |||
|---|---|---|---|---|
| 16 May 2020 | 25 August 2020 | 25 November 2020 | 6 January 2021 | |
| Section A | −749 | −1048 | −2120 | −4478 |
| Section B | −722 | −85 | −320 | −3179 |
| Section C | −2178 | −3659 | −7147 | −6838 |
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Li, J.; Cao, D.; Xiao, T.; Wang, C. Utility Tunnel Settlement Monitoring Using Distributed Fiber Optic and Ground Penetrating Radar Technologies. Sensors 2025, 25, 6964. https://doi.org/10.3390/s25226964
Li J, Cao D, Xiao T, Wang C. Utility Tunnel Settlement Monitoring Using Distributed Fiber Optic and Ground Penetrating Radar Technologies. Sensors. 2025; 25(22):6964. https://doi.org/10.3390/s25226964
Chicago/Turabian StyleLi, Jinyong, Dingfeng Cao, Tao Xiao, and Chunyan Wang. 2025. "Utility Tunnel Settlement Monitoring Using Distributed Fiber Optic and Ground Penetrating Radar Technologies" Sensors 25, no. 22: 6964. https://doi.org/10.3390/s25226964
APA StyleLi, J., Cao, D., Xiao, T., & Wang, C. (2025). Utility Tunnel Settlement Monitoring Using Distributed Fiber Optic and Ground Penetrating Radar Technologies. Sensors, 25(22), 6964. https://doi.org/10.3390/s25226964

