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Properties of concrete reinforced with different kinds of industrial waste fibre materials

机译:各种工业废纤维材料增强的混凝土的性能

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摘要

Nowadays, the use of different types of sub-products in cement-based materials has become a common practice in concrete industry. This paper discusses the feasibility of adding metallic and polypropylene by-product fibres as reinforcement of normal concrete. The effects of the incorporation of various types of waste metallic fibres (WMF) and polypropylene fibres (WPF) on the mechanical properties of fibre-reinforced concrete were experimentally investigated. A normal concrete with a compressive strength of 30 MPa was used as a control mixture. The influence of type, volume and length of WF on the compressive and flexural strengths, and toughness of fibres reinforced concrete (FRC) is evaluated. The results obtained have shown that the WPF decreases the compressive strength of WFRC, especially when using long fibres with high volume fraction. A slight decrease of the compressive strength was also observed with the composites containing more than 2% of the WMF. However, adding the WPF and the hybrid fibres increases the flexural strength of the WFRC. It has been observed that the composites reinforced with the WPF is more advantageous in terms of post-cracking behaviour and load-carrying capacity as compared to the composites reinforced with the WMF even in some cases, the WPF performs better than the multimodal composites. The results have shown that generally, ductility, toughness, and especially the post-cracking behaviour of the WFRC are significantly improved when using the multimodal compos-ites compared to composites reinforced with the mono-fibres system. Results regarding orientation and distribution of fibres into the cement matrix, and porosity and their effect on the WFRC performance were also discussed.
机译:如今,在水泥基材料中使用不同类型的副产品已成为混凝土行业的惯例。本文讨论了添加金属和聚丙烯副产品纤维作为普通混凝土补强的可行性。实验研究了各种废金属纤维(WMF)和聚丙烯纤维(WPF)的掺入对纤维增强混凝土力学性能的影响。将抗压强度为30MPa的普通混凝土用作对照混合物。评估了WF的类型,体积和长度对纤维增强混凝土(FRC)的抗压强度和抗弯强度以及韧性的影响。获得的结果表明,WPF降低了WFRC的抗压强度,特别是在使用体积分数高的长纤维时。对于含有超过2%WMF的复合材料,其压缩强度也略有下降。但是,添加WPF和杂化纤维会增加WFRC的抗弯强度。已经观察到,与WMF增强的复合材料相比,用WPF增强的复合材料在开裂后性能和承载能力方面更具优势,即使在某些情况下,WPF的性能也比多峰复合材料更好。结果表明,与使用单纤维体系增强的复合材料相比,使用多峰复合材料时,WFRC的延展性,韧性尤其是裂后性能得到了显着改善。还讨论了有关纤维在水泥基体中的取向和分布,孔隙率及其对WFRC性能的影响的结果。

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