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Cyclic Response of Steel Fiber Reinforced Concrete Slender Beams: An Experimental Study

机译:钢纤维混凝土细长梁的循环响应:试验研究

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摘要

Reinforced concrete (RC) beams under cyclic loading usually suffer from reduced aggregate interlock and eventually weakened concrete compression zone due to severe cracking and the brittle nature of compressive failure. On the other hand, the addition of steel fibers can reduce and delay cracking and increase the flexural/shear capacity and the ductility of RC beams. The influence of steel fibers on the response of RC beams with conventional steel reinforcements subjected to reversal loading by a four-point bending scheme was experimentally investigated. Three slender beams, each 2.5 m long with a rectangular cross-section, were constructed and tested for the purposes of this investigation; two beams using steel fibrous reinforced concrete and one with plain reinforced concrete as the reference specimen. Hook-ended steel fibers, each with a length-to-diameter ratio equal to 44 and two different volumetric proportions (1% and 3%), were added to the steel fiber reinforced concrete (SFRC) beams. Accompanying, compression, and splitting tests were also carried out to evaluate the compressive and tensile splitting strength of the used fibrous concrete mixtures. Test results concerning the hysteretic response based on the energy dissipation capabilities (also in terms of equivalent viscous damping), the damage indices, the cracking performance, and the failure of the examined beams were presented and discussed. Test results indicated that the SFRC beam demonstrated improved overall hysteretic response, increased absorbed energy capacities, enhanced cracking patterns, and altered failure character from concrete crushing to a ductile flexural one compared to the RC beam. The non-fibrous reference specimen demonstrated shear diagonal cracking failing in a brittle manner, whereas the SFRC beam with 1% steel fibers failed after concrete spalling with satisfactory ductility. The SFRC beam with 3% steel fibers exhibited an improved cyclic response, achieving a pronounced flexural behavior with significant ductility due to the ability of the fibers to transfer the developed tensile stresses across crack surfaces, preventing inclined shear cracks or concrete spalling. A report of an experimental database consisting of 39 beam specimens tested under cyclic loading was also presented in order to establish the effectiveness of steel fibers, examine the fiber content efficiency and clarify their role on the hysteretic response and the failure mode of RC structural members.
机译:循环荷载下的钢筋混凝土(RC)梁通常会由于严重的开裂和压缩破坏的脆性而导致骨料互锁减少,最终导致混凝土压缩区域变弱。另一方面,添加钢纤维可以减少并延迟开裂,并增加RC梁的抗弯/抗剪承载力和延展性。通过四点弯曲方案,实验研究了钢纤维对常规钢筋在反向荷载作用下钢筋混凝土梁响应的影响。为了研究的目的,构造并测试了三个细长梁,每个细长梁的长度为2.5 m,横截面为矩形。两根采用钢纤维增强混凝土的梁,另一根采用普通增强混凝土的梁作为参考样本。将钩径钢纤维添加到钢纤维混凝土(SFRC)梁中,每种纤维的长径比等于44,并且具有两个不同的体积比例(分别为1%和3%)。还进行了伴随,压缩和劈裂试验,以评估使用过的纤维混凝土混合物的压缩和拉伸劈裂强度。提出并讨论了基于能量耗散能力(还包括等效粘性阻尼),损伤指标,抗裂性能和被测梁破坏的滞后响应的测试结果。测试结果表明,与RC梁相比,SFRC梁表现出改善的整体滞后响应,增加的吸收能量容量,增强的开裂模式以及从混凝土压碎到延性挠曲的破坏特征。非纤维参考样品表现出剪切对角线裂纹以脆性方式破坏,而具有1%钢纤维的SFRC梁在混凝土剥落后断裂,具有良好的延展性。钢纤维含量为3%的SFRC梁表现出改善的循环响应,由于纤维能够将产生的拉应力传递到整个裂缝表面,从而防止倾斜的剪切裂缝或混凝土剥落,因此具有显着的延展性和显着的延展性。为了确定钢纤维的有效性,检查纤维含量的效率并阐明它们在钢筋混凝土构件的滞后响应和破坏模式中的作用,还提出了一个由39个在循环载荷下测试的梁试样组成的实验数据库的报告。

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