Eine Plattform für die Wissenschaft: Bauingenieurwesen, Architektur und Urbanistik
Numerical modeling of FRP shear-strengthened reinforced concrete beams
An attractive technique for the shear strengthening of reinforced concrete beams is to provide additional web reinforcement in the form of externally bonded fiber-reinforced polymer (FRP) sheets. So far, theoretical studies concerning the FRP shear strengthening of reinforced concrete members have been rather limited. Moreover, the numerical analyses presented to date have not effectively simulated the interfacial behavior between the bonded FRP and concrete. The analysis presented here aims to capture the three-dimensional and nonlinear behavior of the concrete, as well as accurately model the bond-slip interfacial behavior. The finite-element model is applied to various strengthening strategies; namely, beams with vertical and inclined side-bonded FRP sheets, U-wrap FRP strengthening configurations, as well as anchored FRP sheets. The proposed numerical analysis is validated against published experimental results. Comparisons between the numerical predictions and test results show excellent agreement. The finite-element model is also shown to be a valuable tool for gaining insight into phenomena (e.g., slip profiles, debonding trends, strain distributions) that are difficult to investigate in laboratory tests.
Numerical modeling of FRP shear-strengthened reinforced concrete beams
An attractive technique for the shear strengthening of reinforced concrete beams is to provide additional web reinforcement in the form of externally bonded fiber-reinforced polymer (FRP) sheets. So far, theoretical studies concerning the FRP shear strengthening of reinforced concrete members have been rather limited. Moreover, the numerical analyses presented to date have not effectively simulated the interfacial behavior between the bonded FRP and concrete. The analysis presented here aims to capture the three-dimensional and nonlinear behavior of the concrete, as well as accurately model the bond-slip interfacial behavior. The finite-element model is applied to various strengthening strategies; namely, beams with vertical and inclined side-bonded FRP sheets, U-wrap FRP strengthening configurations, as well as anchored FRP sheets. The proposed numerical analysis is validated against published experimental results. Comparisons between the numerical predictions and test results show excellent agreement. The finite-element model is also shown to be a valuable tool for gaining insight into phenomena (e.g., slip profiles, debonding trends, strain distributions) that are difficult to investigate in laboratory tests.
Numerical modeling of FRP shear-strengthened reinforced concrete beams
Godat, Ahmed (Autor:in) / Neale, Kenneth W. (Autor:in) / Labossiere, Pierre (Autor:in)
Journal of Composites for Construction ; 11 ; 640-649
2007
10 Seiten, 13 Bilder, 4 Tabellen, 19 Quellen
Aufsatz (Zeitschrift)
Englisch
dreidimensionale Struktur , faserverstärkter Kunststoff , Festigkeitserhöhung , Finite-Elemente-Methode , Gleitfläche , Gleitkontakt , Grenzflächenverhalten , mathematisches Modell , mechanische Verstärkung , Modellbildung , numerische Analyse , Platte (Bauteil) , Scherfestigkeit , Stahlbeton , Träger (Bauwesen) , Ummantelung , Verankerung (mechanische Befestigung) , Vorhersagetheorie
Numerical Modeling of FRP Shear-Strengthened Reinforced Concrete Beams
Online Contents | 2007
|Numerical Modeling of FRP Shear-Strengthened Reinforced Concrete Beams
British Library Online Contents | 2007
|Numerical Modeling of Shear Strengthened Reinforced Concrete Beams Using Different Systems
British Library Online Contents | 2014
|Numerical Modeling of Shear Strengthened Reinforced Concrete Beams Using Different Systems
Online Contents | 2014
|