Steel and Composite Structures
Volume 51, Number 6, 2024, pages 661-678
DOI: 10.12989/scs.2024.51.6.661
The behavior of concrete filled steel tubular columns infilled with high-strength geopolymer recycled aggregate concrete
Rajai Z. Al-Rousan and Haneen M. Sawalha
Abstract
The utilization of geopolymer recycled aggregate concrete (GRAC) as the infilled core of the concrete-filled steel
tubular (CFST) columns provides superior economic and environmental benefits. However, limited research exists within the
field of geopolymer recycled aggregate concrete considered a green and sustainable material, in addition to the limitation of the
design guidelines to predict the behavior of such an innovative new material combination. Moreover, the behavior of highstrength concrete is different from the normal-strength one, especially when there is another material of high-strength properties,
such as the steel tube. This paper aims to investigate the behavior of the axially loaded square high-strength GRACFST columns
through the nonlinear finite element analysis (NLFEA). A total of thirty-two specimens were simulated using
ABAQUS/Standard software with three main variables: recycled aggregate replacement ratio (0, 30, and 50) %, width-tothickness ratios (52.0, 32.0, 23.4, and 18.7), and length-to-width ratio (3, 5, 9, and 12). During the analysis, the response in terms
of the axial load versus the longitudinal strain was recorded and plotted. In addition, various mechanical properties were
calculated and analyzed. In view of the results, it has been demonstrated that the mechanical properties of high-strength
GRACFST columns such as ultimate load-bearing capacity, compressive stiffness, energy absorption capacity, and ductility
increase with the increase of the steel tube thickness owing to the improvement of the confinement effect of the steel tube. In
contrast, the incorporation of the recycled aggregate adversely affected the mentioned properties except the ductility, while the
increase of the recycled aggregate replacement ratio improved the column's ductility. Moreover, it has been found that the
increase in the length-to-width ratio significantly reduced both the failure strain and the energy absorption capacity. Finally, the
obtained NLFEA results of the ultimate load-bearing capacity were compared with the corresponding predicted capacities by
numerous codes. It has been concluded that AISC, ACI, and EC give conservative predictions for the ultimate load-bearing
capacity since the confinement effect was not considered by these codes.
Key Words
CFST column; geopolymer concrete; high-strength; NLFEA; recycled aggregate
Address
Rajai Z. Al-Rousan and Haneen M. Sawalha:Department of Civil Engineering, Faculty of Engineering, Jordan University of Science and Technology, P.O. Box 3030, Irbid 22110, Jordan