Behaviour of FRP tube-concrete-encased steel composite columns

被引:64
作者
Ren, F. M. [1 ]
Liang, Y. W. [1 ]
Ho, J. C. M. [1 ]
Lai, M. H. [1 ]
机构
[1] Guangzhou Univ, Sch Civil Engn, Guangzhou, Peoples R China
基金
中国国家自然科学基金;
关键词
Composite column; Confined concrete; Encased steel section; Fibre-reinforced polymer (FRP) tube; Path dependent load-strain model; STRESS-STRAIN MODEL; HIGH-STRENGTH; STRUCTURAL BEHAVIOR; UNIAXIAL BEHAVIOR; DUCTILITY; FLOWABILITY; PERFORMANCE; FILLERS; DESIGN;
D O I
10.1016/j.compstruct.2020.112139
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Fibre-reinforced polymer (FRP) tube-concrete-encased steel (FTCES) column, which consists of an FRP tube, encased steel section and concrete filled between them, attracts the attention of more and more researchers since it has excellent corrosion resistance, superior strength, stiffness and ductility. However, experimental studies on FTCES columns are relatively limited compared with other composite columns, such as concrete-filled-steel-tube columns. Moreover, existing analytical models predicting the load-strain relationships on the FTCES columns were all design-oriented models. A scientifically more rigorous analysis-oriented model is required to explain the complicated physical conditions at the interface among concrete, encased steel and FRP tube, which should consist of a concrete dilation model based on equilibrium and compatibility conditions. Herein, to understand more thoroughly and simulate the uni-axial performance of FTCES columns, an experimental study, consisting of 41 specimens has been conducted. The main parameters are FRP tube thickness, encased steel shape and ratio. Moreover, an analysis-based path dependent load-strain model, previously developed by the authors for the FRP tube-confined concrete columns, has been modified for the FTCES columns. The validity of the proposed model is confirmed by the good agreement obtained between the measured axial load-strain curves of FTCES columns and the theoretically proposed values.
引用
收藏
页数:18
相关论文
共 63 条
[1]  
[Anonymous], 2018, C39C39MA
[2]  
Attard MM, 1996, ACI MATER J, V93, P432
[3]  
Binhowimal SAM, 2017, AUST J STRUCT ENG, V18, P73, DOI 10.1080/13287982.2017.1333184
[4]   Analytical model for predicting axial capacity and behavior of concrete encased steel composite stub columns [J].
Chen, CC ;
Lin, NJ .
JOURNAL OF CONSTRUCTIONAL STEEL RESEARCH, 2006, 62 (05) :424-433
[5]   Tests of Cold-Formed Steel Semi-Oval Hollow Section Members under Eccentric Axial Load [J].
Chen, Man-Tai ;
Young, Ben .
JOURNAL OF STRUCTURAL ENGINEERING, 2020, 146 (04)
[6]   Experimental investigation on cold-formed steel stiffened lipped channel columns undergoing local-distortional interaction [J].
Chen, Man-Tai ;
Young, Ben ;
Martins, Andre Dias ;
Camotim, Dinar ;
Dinis, Pedro Borges .
THIN-WALLED STRUCTURES, 2020, 150
[7]   Beam-column tests of cold-formed steel elliptical hollow sections [J].
Chen, Man-Tai ;
Young, Ben .
ENGINEERING STRUCTURES, 2020, 210
[8]   Behavior of cold-formed steel elliptical hollow sections subjected to bending [J].
Chen, Man-Tai ;
Young, Ben .
JOURNAL OF CONSTRUCTIONAL STEEL RESEARCH, 2019, 158 :317-330
[9]   Structural behavior of cold-formed steel semi-oval hollow section beams [J].
Chen, Man-Tai ;
Young, Ben .
ENGINEERING STRUCTURES, 2019, 185 :400-411
[10]   Structural performance of cold-formed steel elliptical hollow section pin-ended columns [J].
Chen, Man-Tai ;
Young, Ben .
THIN-WALLED STRUCTURES, 2019, 136 :267-279