Projects per year
Abstract
This paper presents an experimental and numerical study on the compression resistances and local stability of high-strength aluminum alloy circular hollow section stub columns after exposure to fire. A testing program was first conducted, including heating tests, 16 post-fire material tests and 16 post-fire stub column tests. Following the testing program, a numerical modeling program was conducted, where finite-element models were developed and validated against the test results. The validated numerical models were then adopted to perform parametric studies to derive additional post-fire performance data. The obtained test and numerical data were used to carry out a comprehensive design analysis, where the existing international design standards and the Continuous Strength Method were examined. The design analysis results generally indicate that the considered international standards lead to under-estimated compression resistances for high-strength aluminum alloy circular hollow sections after exposure to elevated temperatures of 300 °C–550 °C, owing to the neglect of material strain hardening, despite a high level of accuracy for the post-fire design for the 25 °C–200 °C exposure temperature cases. The Continuous Strength Method is shown to provide greatly improved design accuracy over the existing international design standards for the post-fire design of high-strength aluminum alloy circular hollow section stub columns.
| Original language | English |
|---|---|
| Article number | 113185 |
| Journal | Journal of Building Engineering |
| Volume | 111 |
| DOIs | |
| Publication status | Published - 1 Oct 2025 |
Keywords
- Circular hollow section
- Design code
- High-strength aluminum alloys
- Post-fire design
- Post-fire stub column test
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Dive into the research topics of 'Experimental and numerical study of high-strength aluminum alloy circular hollow sections after exposure to fire'. Together they form a unique fingerprint.Projects
- 1 Active
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Load-resisting mechanism and analytical model for Fin Plate connection subjected to impact load
Chen, K. (PI)
1/07/23 → 31/12/26
Project: Internal Research Project
Activities
- 1 PhD Supervision
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Structural performance of high-strength aluminium alloy members
Chen, K. (Supervisor), Loo Chin Moy, C. K. S. (Co-supervisor) & Gong, G. (Co-supervisor)
1 Dec 2023Activity: Supervision › PhD Supervision