4.6 Article

Modeling fire performance of externally prestressed steel-concrete composite beams

期刊

STEEL AND COMPOSITE STRUCTURES
卷 41, 期 5, 页码 625-636

出版社

TECHNO-PRESS
DOI: 10.12989/scs.2021.41.5.625

关键词

axial and rotational restraints; finite element analysis; fire resistance; prestressed composite steel-concrete beams

资金

  1. National Science Foundation of China [51878528, 51508399]

向作者/读者索取更多资源

This paper investigates the fire performance of unrestrained steel-concrete composite beams with externally prestressed tendons through advanced numerical simulation. The analysis shows that the prestressing force in the external tendons is primarily influenced by the applied loading and temperature level. The stiffness of axial restraints has a minor effect on the failure of the composite beams.
This paper examines the fire performance of uninsulated and uncoated restrained steel-concrete composite beams supplemented with externally prestressed strands through advanced numerical simulation. In this work, a sequentially coupled thermo-mechanical analysis is carried out using ABAQUS. This analysis utilizes a highly nonlinear three-dimensional finite element (FE) model that is specifically developed and validated using full-sized specimens tested in a companion fire testing program. The developed FE model accounts for nonlinearities arising from geometric features and material properties, as well as complexities resulting from prestressing systems, fire conditions, and mechanical loadings. Four factors are of interest to this work including effect of restraints (axial vs. rotational), degree of stiffness of restraints, the configuration of external prestressed tendons, and magnitude of applied loading. The outcome of this analysis demonstrates how the prestressing force in the external tendons is primarily governed by the magnitude of applied loading and experienced temperature level. Interestingly, these results also show that the stiffness of axial restraints has a minor influence on the failure of restrained and prestressed steel-concrete composite beams. When the axial restraint ratio does not exceed 0.5, the critical deflection of the composite beam is lower than that of the composite beam with a restraint ratio of 1.0.

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