Static and Fatigue Bond Characteristics of Interfaces between CFRP Sheets and Frost Damage Experienced Concrete

J. Dai, Y. Saito, T. Ueda, Yasuhiko Sato
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引用次数: 29

Abstract

Synopsis: Both short and long-term performances of repaired or strengthened concrete structures using external FRP bonding are greatly affected by states of bonding substrates, which are covercrete and may have experienced various damages. One of them is frost damage in cold regions. This paper intends to investigate how the initial frost damages in concrete influence the static and fatigue bond performances of CFRP/concrete interfaces. Concrete specimens were exposed to freeze and thaw cycles before being bonded with CFRP sheets. The initial frost damage of concrete was controlled approximately at three different levels in terms of its relative dynamic modulus of elasticity, which was 100% (non frost damage), 85% and 70%, respectively. Test results showed that failure modes of CFRP/concrete bonded joints with initial frost damage in concrete were the delamination of covercrete. By contrast the joints without initial frost damage failed in a thin concrete layer as usual. Moreover, CFRP/concrete joints with and without initial frost damage showed different manners in their interface bonding strength and stiffness. If the initial frost damage existed in concrete substrate the effective bond length of CFRP/concrete joints was increased due to the decrease of the bonding stiffness and interfacial fracture energy. Fatigue testing results indicated that the linear slopes of S-N curves of CFRP/concrete bonded joints were not influenced by the initial frost damage. The initial frost damage did not shorten the fatigue life of CFRP/concrete joints if a same relative tensile stress level was kept in the FRP sheets, where the relative tensile stress level was defined as a ratio of the applied tensile force in FRP sheets for the fatigue tests to the maximum static pullout one achieved in each test series.
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CFRP薄板与冻损混凝土界面的静力与疲劳粘结特性
摘要:采用外部FRP粘接修复或加固的混凝土结构,其短期和长期性能受粘接基材状态的影响很大,这些基材是覆盖混凝土,可能经历过各种损伤。其中之一是寒冷地区的霜冻灾害。本文旨在研究混凝土初始霜冻损伤对CFRP/混凝土界面静力和疲劳粘结性能的影响。混凝土试件在与碳纤维布粘结前经受冻融循环。混凝土的相对动弹性模量大致控制在三个不同的水平,分别为100%(非冻损)、85%和70%。试验结果表明,CFRP/混凝土粘结节点在混凝土初始冻损时的破坏模式为覆盖层分层。无初始霜冻损伤的节点在薄层混凝土中破坏。此外,有无初始霜冻损伤的CFRP/混凝土节点界面粘结强度和刚度表现出不同的规律。当混凝土衬底存在初始霜冻损伤时,由于粘结刚度和界面断裂能的降低,CFRP/混凝土节点的有效粘结长度增加。疲劳试验结果表明,CFRP/混凝土粘结节点S-N曲线的线性斜率不受初始霜冻损伤的影响。如果在FRP片材中保持相同的相对拉应力水平,则初始霜冻损伤不会缩短CFRP/混凝土节点的疲劳寿命,其中相对拉应力水平定义为FRP片材在疲劳试验中施加的拉力与每个试验系列中达到的最大静拉力的比值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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