Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/169132
Title: Numerical and experimental study on structural behavior of restrained CHS T-joints in transient fire tests
Authors: Zhang, Y.
Nguyen, Minh Phuong
Fung, Tat Ching
Tan, Kang Hai
Keywords: Engineering::Civil engineering
Issue Date: 2023
Source: Zhang, Y., Nguyen, M. P., Fung, T. C. & Tan, K. H. (2023). Numerical and experimental study on structural behavior of restrained CHS T-joints in transient fire tests. Structures, 48, 511-522. https://dx.doi.org/10.1016/j.istruc.2022.12.075
Project: ARC 2/07 
Journal: Structures 
Abstract: Experimental and numerical studies have been conducted to investigate the structural behavior of restrained circular hollow section (CHS) T-joints subject to fire. Four CHS T-joints having two different brace-to-chord diameter ratios, 0.47 and 0.69, were tested subject to two kinds of loading: axial brace compression and in-plane bending in fire condition following the iSO-834 fire curve. The two chord ends were connected to reaction A-frames incorporating the thermal restraint effect. The joint behavior was discussed based on maximum deformation, fire resistance and critical temperature. When the joint was under in-plane bending, local plasticization was dominant; the observed failure mode combined global bending and local punching shear when the joint was under brace axial compression. Finite element (FE) models were constructed by incorporating thermal restraints and temperature distributions in the joint regions from the tests. The verified FE models were then adopted to predict the critical temperature of other CHS T-joints where brace-to-chord diameter ratio, load ratio and thermal restraints were taken as variable parameters. Unlike T-joint at ambient temperature, a larger brace-to-chord ratio resulted in a greater critical temperature. Moreover, greater load ratio and thermal restraint caused decrease in fire resistance and critical temperature of CHS T-joint subject to both axial compression and in plane bending.
URI: https://hdl.handle.net/10356/169132
ISSN: 2352-0124
DOI: 10.1016/j.istruc.2022.12.075
Schools: School of Civil and Environmental Engineering 
Rights: © 2022 Published by Elsevier Ltd on behalf of Institution of Structural Engineers.
Fulltext Permission: none
Fulltext Availability: No Fulltext
Appears in Collections:CEE Journal Articles

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