Experimental study of external bonded CFRP-concrete interface under low cycle fatigue loading

被引:24
|
作者
Chalot, A. [1 ]
Michel, L. [1 ]
Ferrier, E. [1 ]
机构
[1] Univ Claude Bernard LYON 1, LMC2, 82 Blvd Niels BOHR,Site Villeurbanne DOUA, F-69622 Villeurbanne, France
关键词
Fatigue; Carbon fibre; Adhesion; Polymer (textile) fibre; RC BEAMS; STRUCTURAL BEHAVIOR; FRP SHEETS; FRACTURE; FAILURE; MODELS;
D O I
10.1016/j.compositesb.2019.107255
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The main problem with carbon fibre reinforced polymers (CFRPs) in reinforcement is the bonding of the reinforcement to the concrete because the failure generally occurs by debonding. In the case of seismic loading, a high level of stress with cyclic loading may appear in the adhesive zone that's why this study focuses on the low-cycle fatigue of a concrete/CFRP interface under a high level of shear stress. It focuses on the influence of the fatigue loading amplitude on the service life (number of cycles prior to failure). This paper presents the results of an experimental campaign conducted on double shear test, an analysis of the failure mechanism, and the development of an analytical model to predict the lifetime of a CFRP/concrete interface. We studied two different CFRPs, one based on a unidirectional textile, composite A, and the other reinforcement based on a bidirectional textile (with a 70/30 ratio), composite B. The results of this study will allow the development of an empirical model based on Wohler's fatigue law describing the fatigue life of a CFRP-concrete interface as a function of the imposed fatigue loading amplitude. Once validated and enhanced, this empirical model will make it possible to predict and therefore reduce the risk of disbonding.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] Reliability Analysis of Bond Behaviour of CFRP-Concrete Interface under Wet-Dry Cycles
    Liang, Hongjun
    Li, Shan
    Lu, Yiyan
    Yang, Ting
    MATERIALS, 2018, 11 (05)
  • [42] Experimental and Numerical Study of Fatigue Damage Assessment under Combined High and Low Cycle Loading
    Han, Chaoshuai
    Qu, Xianqiang
    Ma, Yongliang
    Shi, Dexin
    SHOCK AND VIBRATION, 2018, 2018
  • [43] Experimental study on interfacial tensile bonding performance of pre-heated cfrp-concrete under fast load
    Luo W.
    Xiao Y.-Y.
    He D.-E.
    Zhang Z.-H.
    Zhang, Zi-Hua (zhangzihua@nbu.edu.cn), 2018, Tsinghua University (35): : 307 - 312and324
  • [44] Experimental and Computational Modeling of Low Cycle Fatigue Damage of CFRP Strengthened Reinforced Concrete Beams
    Khan, A. R.
    Al-Gadhib, A. H.
    Baluch, M. H.
    INTERNATIONAL JOURNAL OF DAMAGE MECHANICS, 2011, 20 (02) : 211 - 243
  • [45] Experimental determination of FRP-concrete cohesive interface properties under fatigue loading
    Carloni, Christian
    Subramaniam, Kolluru V.
    Savoia, Marco
    Mazzotti, Claudio
    COMPOSITE STRUCTURES, 2012, 94 (04) : 1288 - 1296
  • [46] Experimental and numerical investigation on tensile concrete elements bonded with external CFRP sheets
    Tamulenas, Vytautas
    Ramanauskas, Regimantas
    Kaklauskas, Gintaris
    MODERN BUILDING MATERIALS, STRUCTURES AND TECHNIQUES, 2017, 172 : 1146 - 1153
  • [47] Effect of aggregate content on the CFRP-concrete effective bond length: An experimental and analytical study
    Sanginabadi, Khaled
    Mostofinejad, Davood
    COMPOSITE STRUCTURES, 2021, 269
  • [48] Experimental investigation of the shear behaviour of concrete beams with CFRP strip stirrups under static and fatigue loading
    Wu, Meizhong
    Yuan, Fang
    Guo, Shijie
    Li, Weiwen
    Chen, Guangming
    Zhou, Yingwu
    Huang, Zhenyu
    Yang, Xu
    STRUCTURES, 2022, 41 : 1602 - 1615
  • [49] Prediction of the Bond-Slip Law Between Externally Bonded Concrete Substrates and CFRP Plates Under Fatigue Loading
    Zhang, Wei
    INTERNATIONAL JOURNAL OF CIVIL ENGINEERING, 2018, 16 (9A) : 1085 - 1096
  • [50] Surface roughness, quasi-static fracture, and cyclic fatigue effects on GFRP- and CFRP-concrete bonded interfaces
    Lawrence, Timothy O.
    Boyajian, David M.
    FATIGUE & FRACTURE MECHANICS, 35TH VOLUME, 2007, 35 : 407 - 422