Fiber Reinforced Polymer (FRP) Composites in Retrofitting of Concrete Structures: Polyurethane Systems Versus Epoxy Systems

Elie El Zghayar, K. Mackie, J. Xia
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引用次数: 7

Abstract

Fiber reinforced polymer (FRP) composites are now common structural materials for both new construction and repair/rehabilitation of existing structures. Since the 1980s researchers have developed a significant body of knowledge on externally-bonded composites for infrastructure repair; however, with emphasis on the use of epoxy systems (matrix and adhesives). Externally-bonded FRP composites with polyurethane matrices and adhesives have recently been investigated due to advantages in constructability and mechanical properties. However, little research is available on bond of polyurethane composites to concrete infrastructure, and direct comparisons between performance of epoxy and polyurethane systems. This paper presents several small-scale experiments to characterize the mechanical properties of the bond to concrete of polyurethane FRP composites alongside with epoxy composites. The tests include 3-point bending tests of concrete beams reinforced with the composite materials, lap shear tests, and coupon tensile tests. Strain data collected from the lap shear experiments were used to develop bond-slip relationships of the composite materials that were then implemented in a finite element model and compared with the experimental flexural results. While polyurethane matrices and adhesives are typically characterized by lower shear and normal strengths, results demonstrate the flexibility of the polyurethane matrix proved advantageous in spreading the bond stresses over a larger area compared with epoxy composites. Therefore polyurethane-reinforced concrete beam stiffness and strength properties are comparable with the epoxy counterparts.
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纤维增强聚合物(FRP)复合材料在混凝土结构的改造:聚氨酯系统与环氧树脂系统
纤维增强聚合物(FRP)复合材料现在是新建筑和修复/修复现有结构的常用结构材料。自20世纪80年代以来,研究人员已经开发了用于基础设施修复的外部粘合复合材料的重要知识体系;然而,重点是环氧系统(基质和粘合剂)的使用。以聚氨酯为基体和胶粘剂的外粘接FRP复合材料由于具有良好的施工性能和力学性能,近年来得到了广泛的研究。然而,关于聚氨酯复合材料与混凝土基础设施的结合,以及环氧树脂与聚氨酯体系性能的直接比较研究很少。本文介绍了几个小型试验,以表征聚氨酯玻璃钢复合材料与环氧复合材料与混凝土的粘结力学性能。试验包括复合材料加固混凝土梁的三点弯曲试验、搭接剪切试验和粘结拉伸试验。从搭接剪切实验中收集的应变数据用于建立复合材料的粘结-滑移关系,然后在有限元模型中实现,并与实验弯曲结果进行比较。虽然聚氨酯基体和胶粘剂通常具有较低的剪切强度和法向强度,但研究结果表明,与环氧复合材料相比,聚氨酯基体的柔韧性在将粘合应力扩散到更大的区域上是有利的。因此聚氨酯增强混凝土梁的刚度和强度性能可与环氧树脂相媲美。
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