Park Min Jae, Alemayehu Robel Wondimu, Ju Young K
School of Civil, Environmental and Architectural Engineering, Korea University, Seoul 02841, Korea.
Polymers (Basel). 2022 Apr 6;14(7):1488. doi: 10.3390/polym14071488.
In this study, the fire resistance performance of steel-polymer prefabricated composite floors, which have a sandwich-type structure, was assessed via standard fire tests and analyzed using finite element analysis. This form of analysis should consider two aspects, namely the thermal and structural fields, so as to simulate complicated material properties and large deformations. As previous studies have already conducted analysis in the thermal field, this study entailed only the structural analysis based on the temperature distributions obtained from the thermal analysis. The variables of the specimens were the thicknesses of the top and bottom steel plates and polymers. According to the analysis results, the top steel plate thickness had no impact on the stability ratings, a criterion for fire resistance performance, whereas the bottom steel plate showed a linear correlation with the stability rating. An equation for the stability rating of composite floors was proposed, and an equation for fire resistance performance was devised based on the insulation ratings, which were obtained from the thermal analysis results.
在本研究中,通过标准火灾试验评估了具有夹心型结构的钢-聚合物预制复合地板的耐火性能,并使用有限元分析进行了分析。这种分析形式应考虑两个方面,即热场和结构场,以便模拟复杂的材料特性和大变形。由于先前的研究已经在热场进行了分析,本研究仅基于热分析获得的温度分布进行结构分析。试件的变量是顶部和底部钢板以及聚合物的厚度。根据分析结果,顶部钢板厚度对耐火性能的稳定性评级没有影响,而底部钢板与稳定性评级呈线性相关。提出了复合地板稳定性评级的方程,并基于热分析结果获得的隔热评级设计了耐火性能方程。