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Fatigue Performance of a Precast Hybrid FRP-Reinforced Bridge Truss Girder System

 Fatigue Performance of a Precast Hybrid FRP-Reinforced Bridge Truss Girder System
Autor(en): , ,
Beitrag für IABSE Symposium: Engineering the Future, Vancouver, Canada, 21-23 September 2017, veröffentlicht in , S. 2584-2591
DOI: 10.2749/vancouver.2017.2584
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The fatigue behaviour of a novel precast hybrid bridge truss girder system is experimentally investigated. The girders consist of pretensioned top and bottom concrete chords connected by vertical a...
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Bibliografische Angaben

Autor(en): (University of Calgary, Calgary, AB, Canada)
(University of Calgary, Calgary, AB, Canada)
(University of Calgary, Calgary, AB, Canada)
Medium: Tagungsbeitrag
Sprache(n): Englisch
Tagung: IABSE Symposium: Engineering the Future, Vancouver, Canada, 21-23 September 2017
Veröffentlicht in:
Seite(n): 2584-2591 Anzahl der Seiten (im PDF): 8
Seite(n): 2584-2591
Anzahl der Seiten (im PDF): 8
Jahr: 2017
DOI: 10.2749/vancouver.2017.2584
Abstrakt:

The fatigue behaviour of a novel precast hybrid bridge truss girder system is experimentally investigated. The girders consist of pretensioned top and bottom concrete chords connected by vertical and diagonal truss members made of concrete-filled fibre reinforced polymer (FRP) tubes. The truss members are connected to the top and bottom chords by means of long double-headed glass FRP (GFRP) bars. The chords are also reinforced with GFRP longitudinal bars and transverse stirrups. Six large-scale truss girders were fabricated and tested. All girders had identical cross-section dimensions with 1.32 m overall depth. Three of the girders were 2.83 m in length. The remaining three were

9.82 m long. One short and one long girder were tested under static loading up to failure. The remaining four girders were tested under cyclic fatigue loading of different levels and amplitudes. The tests showed excellent performance of the truss girders in terms of strength, stiffness, and fatigue life.

Stichwörter:
Brücken Ermüdung Fachwerkträger Hybrid