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Effects of Adhesive Bond-Slip Behavior on the Capacity of Innovative FRP Retrofits for Fatigue and Fracture Repair of Hydraulic Steel Structures

机译:粘结滑移行为对水工钢结构疲劳和断裂修复的创新FRP改造能力的影响

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摘要

Over eighty percent of the navigation steel structures (NSS) in the United States have highly deteriorated design boundary conditions, resulting in overloads that cause fatigue cracking. The NSSs’ highly corrosive environment and deterioration of the protective system accelerate the fatigue cracking and cause standard crack repair methods to become ineffective. Numerous studies have assessed and demonstrated the use of carbon fiber reinforced polymers (CFRP) to rehabilitate aging and deteriorated reinforced concrete infrastructure in the aerospace industry. Due to the increase of fatigue and fracture failures of NSS and the shortage of research on CFRP retrofits for submerged steel structures, it is imperative to conduct research on the effects of CFRP repairs on NSS, specifically on the adhesive’s chemical bonding to the steel substrate. This was accomplished by developing a new analytical algorithm for CFRP bond-slip behavior, which is based on Volkersen’s contact shear single lap joint (SLJ) connection. The algorithm was validated by experimental results of fatigue center-cracked large steel plates repaired with CFRP patches. The state of stresses at the crack tip are largely influenced by a combination of the crack tip plasticity radius and overall bond surface area.
机译:在美国,超过80%的导航钢结构(NSS)的设计边界条件严重恶化,导致过载而导致疲劳裂纹。 NSS的高腐蚀性环境和防护系统的退化加速了疲劳裂纹的产生,并导致标准的裂纹修复方法失效​​。许多研究已经评估并证明了碳纤维增强聚合物(CFRP)在航空航天工业中修复老化和退化的增强混凝土基础设施的作用。由于NSS疲劳和断裂失效的增加以及对水下钢结构进行CFRP改造的研究不足,因此有必要进行CFRP修复对NSS的影响研究,尤其是胶粘剂与钢基材的化学键合。这是通过开发一种新的CFRP粘结滑移行为分析算法来实现的,该算法基于Volkersen的接触剪切单搭接(SLJ)连接。疲劳中心裂纹大钢板经CFRP修补修复的实验结果验证了该算法的有效性。裂纹尖端的应力状态在很大程度上受裂纹尖端塑性半径和整体粘结表面积的影响。

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