Abstract
AbstractStructural integrity assessment is essential in modern tunneling to ensure safe construction works. State-of-the-art monitoring approaches like displacement readings of geodetic prisms are often limited in the spatial as well as the temporal measurement resolution, which is why potential safety hazards might be overlooked. This paper introduces a large-scale distributed fiber optic sensing (DFOS) network inside the tunnel lining of a highway tunnel currently under construction in Austria. The tunnel construction site faces challenging geological conditions with loose rock excavation near to the surface with minimal covering. Fiber optic sensing cables were installed along both tunnel tubes to autonomously monitor 13 cross-sections of the primary shotcrete lining, about 220 m of the tunnel in longitudinal direction and 10 cross-sections of the secondary inner lining. Measurements are continuously evaluated and autonomously transferred to the geotechnical engineer on-site for further analysis. While the construction works are ongoing, alerts are additionally sent out automatically, if pre-defined thresholds are exceeded. The paper outcomes demonstrate that the innovative DFOS system immediately responds to structural modifications and, indeed, increases safety at the construction site.
Funder
Graz University of Technology
Publisher
Springer Science and Business Media LLC
Subject
Safety, Risk, Reliability and Quality,Civil and Structural Engineering
Reference21 articles.
1. Autobahnen- und Schnellstrassen-Finanzierungs-Aktiengesellschaft: S 7 Fürstenfelder Schnellstraße Riegersdorf Staatsgrenze bei Heiligenkreuz. https://www.asfinag.at/bauen-erhalten/bauprojekte/s-7-furstenfelder-schnellstrasse-riegersdorf-staatsgrenze-bei-heiligenkreuz/. Accessed: December 2, 2021
2. Barla G (2009) Innovative tunneling construction method to cope with squeezing at the saint martin la porte access adit (lyon-turin base tunnel). In: Proceedings of ISRM Regional Symposium - EUROCK 2009 (keynote lecture). International Society for Rock Mechanics and Rock Engineering
3. Buchmayer F, Monsberger CM, Lienhart W (2021) Advantages of tunnel monitoring using distributed fibre optic sensing. Journal of Applied Geodesy 15(1):1–12. https://doi.org/10.1515/jag-2019-0065
4. Feng X, Wu W, Li X, Zhang X, Zhou J (2015) Experimental investigations on detecting lateral buckling for subsea pipelines with distributed fiber optic sensors. Smart Structures and Systems 15(2):245–258. https://doi.org/10.12989/SSS.2015.15.2.245
5. fibrisTerre Systems GmbH: fTB 5020, Fiber-optic sensing system for distributed strain and temperature monitoring. Berlin, Germany (2020). https://www.fibristerre.de/files/fibrisTerre_flyer.pdf (Accessed: June 09, 2020)
Cited by
16 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献