Effect of Steel Fibers on the Hysteretic Performance of Concrete Beams with Steel Reinforcement-Tests and Analysis.

cyclic tests direct tension tests finite element (FE) analysis flexure hysteretic response numerical analysis reinforced concrete residual stiffness shear smeared crack model steel fiber-reinforced concrete (SFRC) tension softening

Journal

Materials (Basel, Switzerland)
ISSN: 1996-1944
Titre abrégé: Materials (Basel)
Pays: Switzerland
ID NLM: 101555929

Informations de publication

Date de publication:
29 Jun 2020
Historique:
received: 05 06 2020
revised: 25 06 2020
accepted: 29 06 2020
entrez: 3 7 2020
pubmed: 3 7 2020
medline: 3 7 2020
Statut: epublish

Résumé

The use of fibers as mass reinforcement to delay cracking and to improve the strength and the post-cracking performance of reinforced concrete (RC) beams has been well documented. However, issues of common engineering practice about the beneficial effect of steel fibers to the seismic resistance of RC structural members in active earthquake zones have not yet been fully clarified. This study presents an experimental and a numerical approach to the aforementioned question. The hysteretic response of slender and deep steel fiber-reinforced concrete (SFRC) beams reinforced with steel reinforcement is investigated through tests of eleven beams subjected to reversal cyclic loading and numerical analysis using 3D finite element (FE) modeling. The experimental program includes flexural and shear-critical SFRC beams with different ratios of steel reinforcing bars (0.55% and 1.0%), closed stirrups (from 0 to 0.5%), and fibers with content from 0.5 to 3% per volume. The developed nonlinear FE numerical simulation considers well-established relationships for the compression and tensional behavior of SFRC that are based on test results. Specifically, a smeared crack model is proposed for the post-cracking behavior of SFRC under tension, which employs the fracture characteristics of the composite material using stress versus crack width curves with tension softening. Axial tension tests of prismatic SFRC specimens are also included in this study to support the experimental project and to verify the proposed model. Comparing the numerical results with the experimental ones it is revealed that the proposed model is efficient and accurately captures the crucial aspects of the response, such as the SFRC tension softening effect, the load versus deformation cyclic envelope and the influence of the fibers on the overall hysteretic performance. The findings of this study also reveal that SFRC beams showed enhanced cyclic behavior in terms of residual stiffness, load-bearing capacity, deformation, energy dissipation ability and cracking performance, maintaining their integrity through the imposed reversal cyclic tests.

Identifiants

pubmed: 32610642
pii: ma13132923
doi: 10.3390/ma13132923
pmc: PMC7372333
pii:
doi:

Types de publication

Journal Article

Langues

eng

Références

Materials (Basel). 2017 Jun 17;10(6):
pubmed: 28773024
Materials (Basel). 2020 Apr 09;13(7):
pubmed: 32283862
Materials (Basel). 2019 Sep 14;12(18):
pubmed: 31540130
Materials (Basel). 2018 Sep 11;11(9):
pubmed: 30208634
Materials (Basel). 2019 Apr 29;12(9):
pubmed: 31035704
Materials (Basel). 2020 Jun 13;13(12):
pubmed: 32545721
Materials (Basel). 2020 Mar 11;13(6):
pubmed: 32168850
Materials (Basel). 2019 Jul 27;12(15):
pubmed: 31357625
Materials (Basel). 2018 Oct 18;11(10):
pubmed: 30340380
Materials (Basel). 2018 Dec 29;12(1):
pubmed: 30597966
Materials (Basel). 2015 Mar 27;8(4):1442-1458
pubmed: 28788011
Materials (Basel). 2017 Jun 18;10(6):
pubmed: 28773028
Materials (Basel). 2019 Jun 30;12(13):
pubmed: 31261985
Materials (Basel). 2019 Mar 19;12(6):
pubmed: 30893925

Auteurs

Violetta K Kytinou (V)

Laboratory of Reinforced Concrete and Seismic Design of Structures, Civil Engineering Department, Faculty of Engineering, Democritus University of Thrace (D.U.Th.), 67100 Xanthi, Greece.

Constantin E Chalioris (C)

Laboratory of Reinforced Concrete and Seismic Design of Structures, Civil Engineering Department, Faculty of Engineering, Democritus University of Thrace (D.U.Th.), 67100 Xanthi, Greece.

Chris G Karayannis (C)

Laboratory of Reinforced Concrete and Seismic Design of Structures, Civil Engineering Department, Faculty of Engineering, Democritus University of Thrace (D.U.Th.), 67100 Xanthi, Greece.

Anaxagoras Elenas (A)

Laboratory of Reinforced Concrete and Seismic Design of Structures, Civil Engineering Department, Faculty of Engineering, Democritus University of Thrace (D.U.Th.), 67100 Xanthi, Greece.

Classifications MeSH