Axial compressive behavior of basalt fiber reinforced polymer-confined damaged concrete after exposed to elevated temperatures

被引:0
|
作者
Ouyang L. [1 ]
Xu F. [1 ]
Lu Z. [2 ]
机构
[1] School of Environment and Architecture, University of Shanghai for Science and Technology, Shanghai
[2] College of Civil Engineering, Tongji University, Shanghai
来源
Ouyang, Lijun (ouyang@usst.edu.cn) | 2002年 / Beijing University of Aeronautics and Astronautics (BUAA)卷 / 35期
关键词
Axial compressive properties; Basalt fiber; Concrete cylinders; Confinement; Elevated temperature damaged;
D O I
10.13801/j.cnki.fhclxb.20170926.002
中图分类号
学科分类号
摘要
An experimental study on the axial compressive behavior of 36 elevated temperature damaged and 15 unheated concrete cylinders wrapped with basalt fiber reinforced polymer(BFRP) sheets was conducted. The test results show that confinement can significantly change failure mode, improve the strength and ductility of elevated temperature damaged concrete cylinders. After confined with two layers of BFRP sheets, the strength of the cylinders damaged by 200℃, 400℃, 600℃ and 800℃ increases by 56%, 82%, 234% and 250%, respectively; And the axial deformation increases by 328%, 198%, 232% and 136%, respectively. The typical ultimate stress models and ultimate strain models for FRP-confined undamaged concrete are not suitable for confined elevated temperature damaged concrete cylinders. Based on the test results, variables for calculation of ultimate stress and ultimate strain are determined, and ultimate stress model and ultimate strain model of confined elevated temperature damaged concrete cylinders are proposed. © 2018, Editorial Office of Acta Materiae Compositae Sinica. All right reserved.
引用
收藏
页码:2002 / 2013
页数:11
相关论文
共 29 条
  • [1] Li G., Wu B., Han L., Development of the research on fire-resistance of structures, Progress in Steel Building Structures, 8, 1, pp. 1-13, (2006)
  • [2] Wang G., Liu Q., Zhang D., Et al., A finite element model for post-fire seismic performance of steel reinforced concrete columns, Engineering Mechanics, 33, 11, pp. 183-192, (2016)
  • [3] Chen S., Lu X., Ren A., Et al., Firer beam element model for the collapse simulation of concrete structures under fire, Chinese Journal of Computational Mechanics, 26, 1, pp. 72-79, (2009)
  • [4] Guo Z., Mechanical Properties of Concrete Materials and Members at Normal and Elevated Temperatures, (2005)
  • [5] Kodur V.K.R., Raut N.K., Mao X.Y., Et al., Simplified approach for evaluating residual strength of fire-exposed reinforced concrete columns, Materials and Structures, 46, 12, pp. 2059-2075, (2013)
  • [6] Wang Z., Experimental study on mechanical properties of concrete after high temperature, (2010)
  • [7] Chen Y.H., Chang Y.F., Yao G.C., Et al., Experimental research on post-fire behaviour of reinforced concrete columns, Fire Safety Journal, 44, 5, pp. 741-748, (2009)
  • [8] Xu Y., Lin Y., Yang Q., Et al., Experimental study on seismic performance of concrete short columns after fire and strengthened with CFRP, Engineering Mechanics, 31, 8, pp. 92-100, (2014)
  • [9] Xia M., Yu J., Lu Z., Software development and experimental verification on reinforced concrete frame after fire based on fiber element, Engineering Mechanics, 33, 11, pp. 163-173, (2016)
  • [10] Jiang T., Teng J.G., Behavior and design of slender FRP-confined circular RC columns, Journal of Composites for Construction, 17, 4, pp. 443-453, (2013)