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Axial Stress-Strain Performance of Recycled Aggregate Concrete Reinforced with Macro-Polypropylene Fibres

机译:宏观聚丙烯纤维加固回收骨料混凝土的轴向应力 - 应变性能

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摘要

The addition of macro-polypropylene fibres improves the stress-strain performance of natural aggregate concrete (NAC). However, limited studies focus on the stress-strain performance of macro-polypropylene fibre-reinforced recycled aggregate concrete (RAC). Considering the variability of coarse recycled aggregates (CRA), more studies are needed to investigate the stress-strain performance of macro-polypropylene fibre-reinforced RAC. In this study, a new type of 48 mm long BarChip macro-polypropylene fibre with a continuously embossed surface texture is used to produce BarChip fibre-reinforced NAC (BFNAC) and RAC (BFRAC). The stress-strain performance of BFNAC and BFRAC is studied for varying dosages of BarChip fibres. Results show that the increase in energy dissipation capacity (i.e., area under the curve), peak stress, and peak strain of samples is observed with an increase in fibre dosage, indicating the positive effect of fibre addition on the stress-strain performance of concrete. The strength enhancement due to the addition of fibres is higher for BFRAC samples than BFNAC samples. The reduction in peak stress, ultimate strain, toughness and specific toughness of concrete samples due to the utilisation of CRA also reduces with the addition of fibres. Hence, the negative effect of CRA on the properties of concrete samples can be minimised by adding BarChip macro-polypropylene fibres. The applicability of the stress-strain model previously developed for macro-synthetic and steel fibre-reinforced NAC and RAC to BFNAC and BFRAC is also examined.
机译:加入宏聚丙烯纤维的改善天然骨料混凝土(NAC)的应力 - 应变性能。然而,有限的研究集中在宏聚丙烯纤维增强的再生混凝土(RAC)的应力 - 应变性能。考虑粗再生粒料(CRA)的可变性,需要更多的研究来调查宏聚丙烯纤维增强的RAC的应力 - 应变性能。在这项研究中,与连续压花表面纹理的新型48毫米长BarChip宏聚丙烯纤维被用于生产BarChip纤维增强NAC(BFNAC)和RAC(BFRAC)。 BFNAC和BFRAC的应力 - 应变性能进行了研究用于改变BarChip纤维的剂量。结果表明,在能量耗散能力(即,曲线下面积),峰值应力,和样品的峰值应变的增加与增加纤维剂量观察到的,这表明纤维加入对混凝土的应力 - 应变性能的积极作用。强度增强,由于纤维的加入为BFRAC样品比BFNAC样品更高。在峰值应力,极限应变,韧性和混凝土样品的特定韧性由于CRA的利用率的减少也降低了与纤维的加入。因此,CRA对混凝土样品的性能的负面影响可以通过添加BarChip宏聚丙烯纤维被最小化。的应力 - 应变模型的先前针对宏合成和钢纤维增强的NAC和RAC到BFNAC和BFRAC开发的适用性也检查。

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