Back to Search
Start Over
Experimental Assessment and Numerical Modeling of the Bond-Slip Correlation for Steel Rebars in r.c. Members
- Source :
- Materials, Vol 15, Iss 951, p 951 (2022), Materials; Volume 15; Issue 3; Pages: 951
- Publication Year :
- 2022
-
Abstract
- Refined non-linear static or dynamic analyses are increasingly used to assess the behavior of new and existing reinforced concrete structures. To perform these analyses, an adequate knowledge of the force–displacement, bending moment–curvature, and bending moment–rotation curves of relevant parts of structural members is needed, and modeling the bond–slip correlation for steel rebars becomes fundamental. The paper presents the results of an experimental campaign on r.c. specimens under tension, aiming, differently from previous studies, to better reproduce the bond–slip relationship accounting for the local confinement and anchorage conditions of real structural members. Resorting to an original numerical procedure allowing us to predict the relative displacement between steel reinforcement and the surrounding concrete in a reinforced concrete element, once assigned the stress in the naked steel bar and the bond–slip law, the experimental results are compared with the numerical outcomes obtained by adopting codified bond–slip laws. The comparison highlights that experimental values of sliding are well below those that are commonly given in existing bond slip laws, such as that adopted by the CEB-FIP Model Code. A new bond–slip model, which is able to satisfactorily predict actual strain fields and slips along the investigated r.c. elements, is thus proposed with the final aim of extending its implementation into non-linear analyses of r.c. structures.
- Subjects :
- Technology
Microscopy
QC120-168.85
Crack opening
bond–slip
reinforced concrete
non-linear behavior
numerical analysis
crack pattern
crack opening
bond stress
QH201-278.5
Engineering (General). Civil engineering (General)
Crack pattern
TK1-9971
Reinforced concrete
Descriptive and experimental mechanics
Bond stress
Bond–slip
Non-linear behavior
Numerical analysis
General Materials Science
Electrical engineering. Electronics. Nuclear engineering
TA1-2040
Subjects
Details
- ISSN :
- 19961944
- Volume :
- 15
- Issue :
- 3
- Database :
- OpenAIRE
- Journal :
- Materials (Basel, Switzerland)
- Accession number :
- edsair.doi.dedup.....3ede2ad8e1495ad27b8b7139ad4f96a2