主管:中华人民共和国应急管理部
主办:应急管理部天津消防研究所
ISSN 1009-0029  CN 12-1311/TU

Fire Science and Technology ›› 2020, Vol. 39 ›› Issue (3): 364-367.

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Experimental study on fire resistance of concrete  composite member

JIN wei1, TIAN Yuan2,3, HU Xiao-yue2,3, WANG Ming-nian2,3   

  1. 1.PowerChina Huadong Engineering Corporation Limited, Zhejiang Hangzhou 311122,China; 2.School of Civil Engineering, Southwest Jiaotong University,Sichuan Chengdu 610031,China; 3.Key Laboratory of Transportation Tunnel Engineering of Ministry of Education, Southwest Jiaotong University, Sichuan Chengdu 610031,China
  • Online:2020-03-15 Published:2020-03-15

Abstract: The fire resistance of T shape concrete members was studied by using a self-designed combustion furnace.By observing the apparent phenomenon of the component after fire and measuring the internal temperature changes of the composite member during the fire of 120 min, the distribution rule of internal temperature and high temperature damage of concrete under fire,which is composite member composed of concrete walls and slabs, were obtained. The results showed that the concrete spalling phenomenon is more likely to occur at the exposed fire side of the concrete wall under fire, and the fire protection measures such as fire-retardant coating should be taken at this position to reduce the impact of high temperature of the fire. The concrete temperature in the joint core area of the composite member is generally lower than that in other heated areas, and the wall and slab have a certain protective effect on the joint core area. The farther away from the fire-heated surface, the lower the internal temperature of the concrete composite member under fire, and the longer the reaction time till the temperature begins to rise. The temperature of the composite member is lower in the non-heated area, the reaction time of the temperature rise is longer and the speed is slower, and the high temperature has less influence on the structure of the non-heated area.

Key words: concrete composite member, fire resistance, high temperature damage, model experiment, temperature field distribution