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Bond Properties of Sand-Coated GFRP Bars with Fly Ash-Based Geopolymer Concrete

机译:粉煤灰基地聚合物混凝土的砂膜GFRP筋粘结性能

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Bond behavior is an important subject in the design and performance of reinforced concrete structures. In this research, the bond property between sand-coated glass fiber-reinforced polymer (GFRP) bars, a corrosion-resistant substitute to steel bars, and fly ash-based geopolymer cement (GPC) concrete, a more environmental friendly alternative to ordinary portland cement (OPC) concrete, is investigated. Pullout test specimens containing GFRP bars embedded in GPC and OPC concrete cylinders with 100-mm diameter and 170-mm height were prepared. Three different embedment lengths were tested: three, six, and nine times the bar diameter. Average concrete compressive strengths of approximately 25 and 45 MPa and GFRP bar diameters of 12.7 and 15.9 mm were the other test parameters. For each specimen, the test results include the bond failure mode, the average bond strength, the slip at the loaded and free end, and the bond-slip relationship curves. The test results showed that GFRP-reinforced GPC concrete has similar bond strength as that of GFRP-reinforced OPC concrete. The increase in embedment length resulted in the decrease of the bond strength as well as a change in the failure mode of the specimens. Furthermore, the experimental results were used to generate a constitutive bond-slip law. Finally, finite-element modeling is performed by using the constitutive bond-slip law to investigate strain and bond distribution along the embedment length of the bar. (C) 2016 American Society of Civil Engineers.
机译:粘结行为是钢筋混凝土结构设计和性能的重要课题。在这项研究中,砂涂层玻璃纤维增​​强聚合物(GFRP)钢筋(一种可替代钢筋的抗腐蚀剂)与粉煤灰基地质聚合物水泥(GPC)混凝土之间的粘合性能,是普通硅酸盐水泥的更环保替代品研究了水泥(OPC)混凝土。准备了包含GFRP筋的拉拔试样,该试样嵌入GPC和OPC混凝土圆柱体中,直径为100毫米,高度为170毫米。测试了三种不同的嵌入长度:钢筋直径的三倍,六倍和九倍。其他测试参数是平均混凝土抗压强度约为25和45 MPa,GFRP钢筋直径为12.7和15.9 mm。对于每个样品,测试结果包括粘结破坏模式,平均粘结强度,受载荷和自由端的滑移以及粘结-滑移关系曲线。测试结果表明,GFRP增强的GPC混凝土具有与GFRP增强的OPC混凝土相似的粘结强度。包埋长度的增加导致粘结强度的降低以及样品破坏模式的改变。此外,实验结果用于生成本构键滑定律。最后,使用本构键滑定律进行有限元建模,以研究沿钢筋嵌入长度的应变和键分布。 (C)2016年美国土木工程师学会。

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