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Experimental investigations on the load-bearing capacity of tunnel segments – Evaluation of the resource efficiency of large-scale test specimens

 Experimental investigations on the load-bearing capacity of tunnel segments – Evaluation of the resource efficiency of large-scale test specimens
Auteur(s): , ,
Présenté pendant IABSE Congress: Beyond Structural Engineering in a Changing World, San José, Cost Rica, 25-27 Seotember 2024, publié dans , pp. 167-173
DOI: 10.2749/sanjose.2024.0167
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Considering the current state of climate change and the finite supply of energy and resources, it is crucial to optimize newly erected structures in order to increase the construction industry's re...
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Détails bibliographiques

Auteur(s): (Institute of Structural Engineering, TU Wien, Vienna, Austria)
(Institute of Structural Engineering, TU Wien, Vienna, Austria)
(Institute of Structural Engineering, TU Wien, Vienna, Austria)
Médium: papier de conférence
Langue(s): anglais
Conférence: IABSE Congress: Beyond Structural Engineering in a Changing World, San José, Cost Rica, 25-27 Seotember 2024
Publié dans:
Page(s): 167-173 Nombre total de pages (du PDF): 7
Page(s): 167-173
Nombre total de pages (du PDF): 7
DOI: 10.2749/sanjose.2024.0167
Abstrait:

Considering the current state of climate change and the finite supply of energy and resources, it is crucial to optimize newly erected structures in order to increase the construction industry's resource efficiency. Segmental tunnel linings present a significant opportunity for this kind of initiative as the optimization of one segment affects many identical ones. Therefore, an experimental campaign on large-scale specimens was conducted to investigate the enhancement of the load transfer zone between tunnel segments.

In this paper, the performance of three test specimens is analyzed regarding the resource efficiency, whereby these are conventionally reinforced tunnel segments, segments with butt-jointed reinforcement bars and steel-fibers, respectively. The work follows on from earlier studies on cylindrical specimens, where the ultimate load was linked to the global warming potential (GWP). The results show that the resource efficiency of the specimen with butt-jointed bars outperforms the other types.