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Failure-mode analysis of macro-synthetic and hybrid fibre-reinforced concrete beams with GFRP bars using acoustic emission technique

机译:用声发射技术与GFRP棒的宏观合成和混合纤维钢筋混凝土梁的故障模式分析

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Replacement of steel rebars with fibre-reinforced polymer (FRP) bars in concrete members has become prominent in recent years to avoid the corrosion issues. To improve the shear behaviour of glass FRP (GFRP) bars reinforced concrete (RC), macro-synthetic polyolefin (PO) fibres and a hybrid combination of PO with steel fibres are added. The influence of these fibres on the failure mode of GFRP beams are studied by applying acoustic emission (AE) technique. Seven full-scale GFRP-RC beams are cast by varying fibre dosages of 0.35%, 0.70% and 1.0% by the volume of concrete and tested under three-point bending with the shear span to effective depth ratio (a/d) of 2.2. Experimental results reveal that the addition of fibres increases the post-cracking stiffness, peak load and ductility, compared to the control beam. The increase in AE events, average RA values and shear-to-tensile crack-ratios indicate the effects of fibres on improving the shear capacity and ductility of the beams. The failure zones localised by AE events correlate well with crack patterns observed in the experiments. In particular, cracks (AE sources) distribute close to the loading point in the control specimen. The crack angle increases with the increase in fibre dosage, indicating the change in failure modes. With the addition of moderate and high fibre dosages, the failure mode is converted from shear to flexure-shear and flexure respectively, thereby producing more tensile fracture modes. (C) 2020 Elsevier Ltd. All rights reserved.
机译:在近年来避免腐蚀问题近年来,用混凝土构件的纤维增强聚合物(FRP)棒的钢钢筋更换为突出。为了提高玻璃FRP(GFRP)钢筋混凝土(RC)的剪切行为,加入宏观合成聚烯烃(PO)纤维和具有钢纤维的PO的杂交组合。通过施加声发射(AE)技术研究了这些纤维对GFRP光束的故障模式的影响。通过用混凝土的体积变化的纤维剂量为0.35%,0.70%和1.0%的纤维剂量,并在用剪切跨度以有效的深度比(A / D)为2.2 。实验结果表明,与对照光束相比,添加纤维的添加增加了裂解后刚度,峰值负荷和延展性。 AE事件的增加,平均RA值和剪切到拉伸裂缝比表明纤维对提高梁的剪切容量和延展性的影响。 AE事件本地化的故障区与实验中观察到的裂纹图案良好相关。特别地,裂缝(AE源)分布接近控制样本中的装载点。裂缝角随着纤维剂量的增加而增加,表明失效模式的变化。随着中等和高纤维剂量的添加,破坏模式分别从剪切转换为弯曲剪切和挠曲,从而产生更多拉伸裂缝模式。 (c)2020 elestvier有限公司保留所有权利。

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