Assessing Novel Fiber Reinforcement Against Conventional Mix by Using Both Natural and Synthetic Fibers in Concrete with Statistical Performance Analysis

Vijayan Selvam, Tholkapiyan Muniyandi
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Abstract

This research investigates the effect of incorporating innovative human hair fibers (HHF) and polypropylene fibers (PPF) into concrete, which has been observed to enhance the material’s strength characteristics. These fibers augment the concrete’s tensile strength and resilience, fortifying it against cracks and elevating its overall endurance. This research delves into the impact of reinforcing concrete specimens with human hair and polypropylene fibers. These specimens are employed in cube, cylinder and flexural beam tests. Both fresh and hardened properties, such as compaction factor and slump, and compressive, split-tensile, and flexural strength at varying curing periods (28 days and 90 days) and the ratios (1%, 2%, and 3%) are considered by weight of cement. Specifically, the 3% polypropylene fiber concrete mix exhibited the highest average compressive strength at both 28 and 90 days, while the 2% polypropylene fiber mix showed the highest split-tensile strength. Flexural strength results followed a similar trend. Results show that 3% HHF addition leads to notable improvements in concrete strength properties, albeit not as significant as with polypropylene fibers. Statistical analysis, including independent samples Kruskal–Wallis tests, was conducted to compare the distributions of strength values across different groups. The statistical analysis indicates significant differences in strength distributions across groups, with p-values below the significance level of 0.05. This underscores HHF’s potential as a sustainable alternative in construction applications, contributing to enhanced concrete strength.
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通过统计性能分析,评估在混凝土中同时使用天然纤维和合成纤维的新型纤维加固材料与传统混合材料的对比情况
这项研究探讨了在混凝土中加入创新型人发纤维(HHF)和聚丙烯纤维(PPF)的效果。这些纤维增强了混凝土的抗拉强度和回弹性,使其能够抵御裂缝并提高整体耐久性。本研究深入探讨了用人发和聚丙烯纤维加固混凝土试样的影响。这些试样用于立方体、圆柱体和弯曲梁试验。在不同的养护期(28 天和 90 天)和水泥重量比(1%、2% 和 3%)下,考虑了新拌混凝土和硬化混凝土的性能,如压实系数和坍落度,以及抗压强度、劈裂拉伸强度和抗弯强度。具体来说,3% 聚丙烯纤维混凝土混合物在 28 天和 90 天内的平均抗压强度最高,而 2% 聚丙烯纤维混合物的劈裂拉伸强度最高。抗折强度结果也呈现类似趋势。结果表明,添加 3% 的 HHF 可以显著改善混凝土的强度性能,尽管改善程度不如添加聚丙烯纤维那么明显。我们进行了统计分析,包括独立样本 Kruskal-Wallis 检验,以比较不同组的强度值分布。统计分析结果表明,各组之间的强度分布差异显著,P 值均低于 0.05 的显著水平。这凸显了 HHF 在建筑应用中作为可持续替代材料的潜力,有助于提高混凝土强度。
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