Title :
Thermal Properties and Heat Transfer in Concrete Filled Steel Tube Reinforced Concrete Columns Exposed to Fire
Author :
Kai Xiang ; Guo-Hui Wang ; Yan-Chong Pan
Author_Institution :
Tianjin Fire Res. Inst. of the Minist. of Public Security, Tianjin, China
Abstract :
The thermal properties of concrete and steel were concerned. Specific heat, thermal conductivity, density and thermal contact conductance at the steel-concrete interface were compared from different researchers. Different ways of calculation method of heat transfer were summarized. A finite element method (FEM) procedure was suggested to calculate temperature distribution of concrete filled steel tube reinforced concrete (CFSTRC) column with suitable thermal properties of concrete and steel. The results showed that different models of thermal properties of concrete and steel dispersed widely. The dispersion of thermal properties of steel was smaller than that of concrete. Moisture and aggregate type had some influence on specific heat of concrete, and aggregate type had some influence on thermal conductivity of concrete. Thermal conductivity of reinforcing steel and stainless steel showed a reverse trend with temperature increasing. The influence of temperature on density of concrete and steel was slightly. Cross-sectional type had some influence on thermal contact conductance at the steel-concrete interface in some models, but constant values have been used extensively by different researchers. According to experimental validation, the FEM procedure was capable of predicting temperature distribution of CFSTRC columns with an accuracy that was sufficient for design purposes.
Keywords :
aggregates (materials); construction components; density; finite element analysis; fires; heat transfer; moisture; pipes; reinforced concrete; specific heat; stainless steel; structural engineering; temperature distribution; thermal conductivity; CFSTRC columns; FEM procedure; aggregate type; concrete filled steel tube reinforced concrete columns; density; finite element method; fire; heat transfer; moisture; reinforcing steel; specific heat; stainless steel; steel-concrete interface; temperature distribution; thermal conductivity; thermal contact conductance; thermal properties; Concrete; Conductivity; Electron tubes; Fires; Heating; Steel; Thermal conductivity; Fire exposure; Heat transfer; Temperature distribution; Thermal properties;
Conference_Titel :
Intelligent Computation Technology and Automation (ICICTA), 2014 7th International Conference on
Conference_Location :
Changsha
Print_ISBN :
978-1-4799-6635-6
DOI :
10.1109/ICICTA.2014.208