Numerical Simulations of Restrained Shrinkage Cracking in Glass Fibre Reinforced Shotcrete Slabs

Modern tunnels in hard rock are usually constructed by drill and blast with the rock reinforced by shotcrete (sprayed concrete) in combination with rock bolts. The irregular rock surface and the projection method of shotcrete lead to a tunnel lining of varying thickness with unevenly distributed str...

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Main Authors: Andreas Sjölander, Anders Ansell
Format: Article
Language:English
Published: Wiley 2017-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2017/8987626
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author Andreas Sjölander
Anders Ansell
author_facet Andreas Sjölander
Anders Ansell
author_sort Andreas Sjölander
collection DOAJ
description Modern tunnels in hard rock are usually constructed by drill and blast with the rock reinforced by shotcrete (sprayed concrete) in combination with rock bolts. The irregular rock surface and the projection method of shotcrete lead to a tunnel lining of varying thickness with unevenly distributed stresses that affect the risk of cracking during shrinkage of the young and hardening material. Depending on water conditions, shotcrete is sprayed directly either onto the rock surface or over a drainage system, creating a fully restrained or an end-restrained structural system. In this paper, a method for nonlinear numerical simulations has been demonstrated, for the study of differences in stress build-up and cracking behaviour of restrained shotcrete slabs subjected to shrinkage. Special focus was given to the effects of the irregular shape and varying thickness of the shotcrete. The effects of glass fibre reinforcement and bond were implemented in the study by changing the fracture energy in bending and in the interaction between shotcrete and the substrate. The study verifies that an end-restrained shotcrete slab is prone to shrinkage induced cracking and shows the importance of a continuous bond to avoid wide shrinkage cracks when shotcrete is sprayed directly onto the rock.
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spelling doaj-art-e51615305a6f4895bbf70d8fcd27aa912025-08-20T02:21:18ZengWileyAdvances in Civil Engineering1687-80861687-80942017-01-01201710.1155/2017/89876268987626Numerical Simulations of Restrained Shrinkage Cracking in Glass Fibre Reinforced Shotcrete SlabsAndreas Sjölander0Anders Ansell1KTH Royal Institute of Technology, Division of Concrete Structures, 100 44 Stockholm, SwedenKTH Royal Institute of Technology, Division of Concrete Structures, 100 44 Stockholm, SwedenModern tunnels in hard rock are usually constructed by drill and blast with the rock reinforced by shotcrete (sprayed concrete) in combination with rock bolts. The irregular rock surface and the projection method of shotcrete lead to a tunnel lining of varying thickness with unevenly distributed stresses that affect the risk of cracking during shrinkage of the young and hardening material. Depending on water conditions, shotcrete is sprayed directly either onto the rock surface or over a drainage system, creating a fully restrained or an end-restrained structural system. In this paper, a method for nonlinear numerical simulations has been demonstrated, for the study of differences in stress build-up and cracking behaviour of restrained shotcrete slabs subjected to shrinkage. Special focus was given to the effects of the irregular shape and varying thickness of the shotcrete. The effects of glass fibre reinforcement and bond were implemented in the study by changing the fracture energy in bending and in the interaction between shotcrete and the substrate. The study verifies that an end-restrained shotcrete slab is prone to shrinkage induced cracking and shows the importance of a continuous bond to avoid wide shrinkage cracks when shotcrete is sprayed directly onto the rock.http://dx.doi.org/10.1155/2017/8987626
spellingShingle Andreas Sjölander
Anders Ansell
Numerical Simulations of Restrained Shrinkage Cracking in Glass Fibre Reinforced Shotcrete Slabs
Advances in Civil Engineering
title Numerical Simulations of Restrained Shrinkage Cracking in Glass Fibre Reinforced Shotcrete Slabs
title_full Numerical Simulations of Restrained Shrinkage Cracking in Glass Fibre Reinforced Shotcrete Slabs
title_fullStr Numerical Simulations of Restrained Shrinkage Cracking in Glass Fibre Reinforced Shotcrete Slabs
title_full_unstemmed Numerical Simulations of Restrained Shrinkage Cracking in Glass Fibre Reinforced Shotcrete Slabs
title_short Numerical Simulations of Restrained Shrinkage Cracking in Glass Fibre Reinforced Shotcrete Slabs
title_sort numerical simulations of restrained shrinkage cracking in glass fibre reinforced shotcrete slabs
url http://dx.doi.org/10.1155/2017/8987626
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AT andersansell numericalsimulationsofrestrainedshrinkagecrackinginglassfibrereinforcedshotcreteslabs