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Shear Behavior of Variable-Depth Concrete Beams with Wound Fiber-Reinforced Polymer Shear Reinforcement

机译:卷绕纤维增强聚合物剪切钢筋可变深度混凝土梁的剪切行为

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摘要

A novel shear reinforcing system, wound fiber-reinforced polymer (W-FRP), that capitalizes on the flexibility of carbon fiber to create durable reinforcement cages for geometrically optimized concrete structures, is proposed thereby unlocking new potential to minimize carbon emissions associated with new concrete structures. Fiber-reinforced polymer (FRP) shear design methods have been extensively validated against prismatic beam tests, but variations in geometry have not yet been considered. This paper proposes revised design methods, validated using tests of eight W-FRP-reinforced variable-depth concrete beams, to examine the contributing factors to shear capacity. The corner strength, orientation, and compression concrete confinement provided by W-FRP links, along with the contribution to shear of longitudinal bars, are shown to be key design parameters. Optimizing the W-FRP pattern is found to enhance shear capacity by as much as 50%. The variable-depth geometry tested in this paper uses 19% less concrete than an equivalent-strength prismatic beam. Both reinforcement and geometry optimizations are the key steps toward achieving minimal material use for concrete structures. (c) 2018 American Society of Civil Engineers.
机译:一种新型剪切增强系统,卷绕纤维增强聚合物(W-FRP),提高了碳纤维的柔韧性,为几何优化混凝土结构产生耐用的加强笼,从而解锁了最大限度地减少与新混凝土相关的碳排放的新电位结构。纤维增强聚合物(FRP)剪切设计方法已广泛验证棱柱梁测试,但尚未考虑几何体变化。本文提出了经过修订的设计方法,验证了8个W-FRP加强可变深度混凝土梁的测试,以检查剪切容量的贡献因素。由W-FRP链路提供的角强度,取向和压缩混凝土限制,以及纵向杆剪切的贡献,被证明是关键设计参数。找到优化W-FRP模式,以增强剪切容量多达50%。本文中测试的可变深度几何形状使用比同等强度棱镜梁的​​混凝土较少。增强和几何优化都是实现混凝土结构最小材料的关键步骤。 (c)2018年美国土木工程学会。

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