Buy article PDF
The purchased file will be sent to you
via email after the payment is completed.
US$ 35
Computers and Concrete Volume 8, Number 1, February 2011 , pages 1-22 DOI: https://doi.org/10.12989/cac.2011.8.1.001 |
|
|
A numerical tension-stiffening model for ultra high strength fiber-reinforced concrete beams |
||
Chaekuk Na and Hyo-Gyoung Kwak
|
||
Abstract | ||
A numerical model that can simulate the nonlinear behavior of ultra high strength fiberreinforced concrete (UHSFRC) structures subject to monotonic loadings is introduced. Since engineering material properties of UHSFRC are remarkably different from those of normal strength concrete and engineered cementitious composite, classification of the mechanical characteristics related to the biaxial behavior of UHSFRC, from the designation of the basic material properties such as the uniaxial stressstrain relationship of UHSFRC to consideration of the bond stress-slip between the reinforcement and surrounding concrete with fiber, is conducted in this paper in order to make possible accurate simulation of the cracking behavior in UHSFRC structures. Based on the concept of the equivalent uniaxial strain, constitutive relationships of UHSFRC are presented in the axes of orthotropy which coincide with the principal axes of the total strain and rotate according to the loading history. This paper introduces a criterion to simulate the tension-stiffening effect on the basis of the force equilibriums, compatibility conditions, and bond stress-slip relationship in an idealized axial member and its efficiency is validated by comparison with available experimental data. Finally, the applicability of the proposed numerical model is established through correlation studies between analytical and experimental results for idealized UHSFRC beams. | ||
Key Words | ||
ultra high performance concrete (UHPC); steel fiber-reinforced concrete (SFRC); tensionstiffening model; tensile properties; finite element analysis. | ||
Address | ||
Chaekuk Na and Hyo-Gyoung Kwak: Dept. of Civil and Environmental Engineering, Korea Advanced Institute of Science and Technology, 335 Gwahak-ro, Yuseong-gu, Daejeon, Korea, 305-701 | ||