Steel and Composite Structures
Volume 47, Number 2, 2023, pages 269-287
DOI: 10.12989/scs.2023.47.2.269
Buckling resistance behavior of WGJ420 fire-resistant weathering steel columns under fire
Yiran Wu, Xianglin Yu, Yongjiu Shi, Yonglei Xu and Huiyong Ban
Abstract
The WGJ420 fire-resistant weathering (FRW) steel is developed and manufactured with standard yield strength of
420 MPa at room temperature, which is expected to significantly enhance the performance of steel structures with excellent fire
and corrosion resistances, strong seismic capacity, high strength and ductility, good resilience and robustness. In this paper, the
mechanical properties of FRW steel plates and buckling behavior of columns are investigated through tests at elevated
temperatures. The stress-strain curves, mechanical properties of FRW steel such as modulus of elasticity, proof strength, tensile
strength, as well as corresponding reduction factors are obtained and discussed. The recommended constitutive model based on
the Ramberg-Osgood relationship, as well as the relevant formulas for mechanical properties are proposed, which provide
fundamental mechanical parameters and references. A total of 12 FRW steel welded I-section columns with different slenderness
ratios and buckling load ratios are tested under standard fire to understand the global buckling behavior in-depth. The influences
of boundary conditions on the buckling failure modes as well as the critical temperatures are also investigated. In addition, the
temperature distributions at different sections/locations of the columns are obtained. It is found that the buckling deformation
curve can be divided into four stages: initial expansion stage, stable stage, compression stage and failure stage. The fire test
results concluded that the residual buckling capacities of FRW steel columns are substantially higher than the conventional steel
columns at elevated temperatures. Furthermore, the numerical results show good agreement with the fire test results in terms of
the critical temperature and maximum axial elongation. Finally, the critical temperatures between the numerical results and
various code/standard curves (GB 51249, Eurocode 3, AS 4100, BS 5950 and AISC) are compared and verified both in the
buckling resistance domain and in the temperature domain. It is demonstrated that the FRW steel columns have sufficient safety
redundancy for fire resistance when they are designed according to current codes or standards.
Key Words
buckling resistance; critical temperature; Fire-resistant weathering (FRW) steel; mechanical properties; standard fire test; Welded I-section column
Address
Yiran Wu, Xianglin Yu, Yongjiu Shi, Yonglei Xu and Huiyong Ban:Department of Civil Engineering, Tsinghua University, 30 Shuangqing Road, Beijing 100084, P. R. China