Review of current fire design rules for cold-formed steel wall systems

Author:

Gunalan Shanmuganathan1,Mahendran Mahen1

Affiliation:

1. School of Civil Engineering and the Built Environment, Science and Engineering Faculty, Queensland University of Technology, Brisbane, QLD, Australia

Abstract

Light gauge steel frame wall systems are commonly used in industrial and commercial buildings, and there is a need for simple fire design rules to predict their load capacities and fire resistance ratings. During fire events, the light gauge steel frame wall studs are subjected to non-uniform temperature distributions that cause thermal bowing, neutral axis shift and magnification effects and thus resulting in a combined axial compression and bending action on the studs. In this research, a series of full-scale fire tests was conducted first to evaluate the performance of light gauge steel frame wall systems with eight different wall configurations under standard fire conditions. Finite element models of light gauge steel frame walls were then developed, analysed under transient and steady-state conditions and validated using full-scale fire tests. Using the results from fire tests and finite element analyses, a detailed investigation was undertaken into the prediction of axial compression strength and failure times of light gauge steel frame wall studs in standard fires using the available fire design rules based on Australian, American and European standards. The results from both fire tests and finite element analyses were used to investigate the ability of these fire design rules to include the complex effects of non-uniform temperature distributions and their accuracy in predicting the axial compression strength of wall studs and the failure times. Suitable modifications were then proposed to the fire design rules. This article presents the details of this investigation on the fire design rules of light gauge steel frame walls and the results.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Mechanics of Materials,Safety, Risk, Reliability and Quality

Reference20 articles.

1. Design of Light Steel-framed Walls for Fire Resistance

2. Ranby A. Structural fire design of thin walled steel sections. Licentiate Thesis, Department of Civil and Mining Engineering, Lulea University of Technology, Stockholm, Sweden, 1999.

3. Kaitila O. Finite element modelling of cold-formed steel members at high temperatures. Licentiate Thesis, Helsinki University of Technology Laboratory of Steel Structures, Espoo, Finland, 2002.

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