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Research Project
Institute for Sustainability and Innovation in Structural Engineering
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A multidisciplinary engineering-based approach for tunnelling strengthening with a new fibre reinforced shotcrete technology
Publication . Barros, Joaquim; Costelha, Hugo; Bento, David; Brites, Nelson; Luís, Rui; Patrício, Hugo; Cunha, Vítor M.C.F.; Bento, Luís; Miranda, Tiago; Coelho, Paulo; Azenha, Miguel; Neves, Carlos; Salehian, Hamidreza; Moniz, Gonçalo; Nematollahi, Mojtaba; Teixeira, Abel; Taheri, Mahsa; Mezhyrych, Anton; Hosseinpour, Emad; Correia, Tales; Kazemi, Hamid; Hassanshahi, Omid; Rashiddel, Alireza; Esmail, Briar
This paper describes the relevant research activities that are being carried out on the development of a novel
shotcrete technology capable of applying, autonomously and in real time, fibre reinforced shotcrete (FRS) with
tailored properties regarding the optimum structural strengthening of railway tunnels (RT). This technique allows to apply fibre reinforced concrete (FRC) of strain softening (SSFRC) and strain hardening (SHFRC) according to a multi-level advanced numerical simulation that considers the relevant nonlinear features of these
FRC, as well as their interaction with the surrounding soil, for an intended strengthening performance of the RT.
Building information modelling (BIM) is used for assisting on the development of data files of the involved design
software, integrating geometric assessment of a RT, damages from inspection and diagnosis, and the characteristics of the FRS strengthening solution. A dedicated computational tool was developed to design FRC with
target properties. The preliminary experimental results on the evaluation of the relevant mechanical properties of
the FRS are presented and discussed, as well as the experimental tests on the bond between FRS and current
substrates found in RT. Representative numerical simulations were performed to demonstrate the structural
performance of the proposed FRS-based strengthening technique. Computational tools capable of assuring, in
real time, the aimed thickness of the layers forming the FRS strengthening shell were also developed. The first
generation of a mechanical device for controlling the amount of fibres to be added, in real time, to the FRS
mixture was conceived, built and tested. A mechanism is also being developed to improve the fibre distribution
during its introduction through the mechanical device to avoid fibre balling. This work describes the relevant
achievements already attained, as introduces the planned future initiatives in the scope of this project.
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Funding agency
Fundação para a Ciência e a Tecnologia
Funding programme
6817 - DCRRNI ID
Funding Award Number
UIDB/04029/2020