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Influence of silica fume and ground granulated blast furnace slag on the engineering properties of ultra‑high‑performance concrete

机译:二氧化硅烟气和地面粒状高炉炉渣对超高性能混凝土工程性能的影响

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摘要

The supplementary cementitious materials (SCMs) are used as an alternative material to reduce environmental concerns. Using industrial waste as an SCM can also help to reduce the amount of garbage deposited in lagoons and landfills and can have strength, durability, economic and environmental benefits. Ultra-high performance concrete (UHPC) is a new type of concrete with improved mechanical and durability properties. There is just a little amount of information on the impact of different SCMs on UHPC mechanical and durability performance. This paper presents the mechanical and durability properties of UHPC containing Silica Fume (SF) and Ground Granulated Blast Furnace Slag (GGBS). Mechanical properties of UHPC such as compressive, splitting tensile and flexural strengths were studied. Moreover, its resistance to chloride ions penetration was evaluated along with Sorptivity. According to the test findings, the strength properties of GGBS-based UHPC are significant up to 40% cement replacement level under normal water curing. Furthermore, the inclusion of 12% SF and 40% GGBS demonstrated superior mechanical and durability characteristics as compared to their binary counterpart. In terms of the synergistic effects of GGBS and SF, the efficiency factor (k value) was computed as an indicator to predict the compressive strength of UHPC. Oven curing at elevated temperature for 48 h and thereafter normal curing improved the results of early age compressive strength significantly.
机译:补充水泥材料(SCM)用作替代材料以减少环境问题。使用工业废料作为SCM,也有助于减少泻湖和垃圾填埋场中存放的垃圾量,并且可以具有强度,耐用性,经济和环境效益。超高性能混凝土(UHPC)是一种新型混凝土,具有改善的机械和耐用性。有关不同SCM对UHPC机械和耐用性性能的影响,只有一点信息。本文介绍了含二氧化硅烟气(SF)和地面粒状高炉炉渣(GGB)的UHPC的机械和耐久性。研究了UHPC的机械性能,如压缩,分裂拉伸和弯曲强度。此外,其对氯离子渗透的抗性与吸附症一起评估。根据试验结果,基于GGBS的UHPC的强度特性在正常水固化下具有明显高达40%的水泥置换水平。此外,与二元对应物相比,包含12%SF和40%的GGB和40%GGB的卓越的机械和耐久性特性。就GGBS和SF的协同效应而言,计算效率因子(K值)作为预测UHPC的抗压强度的指示器。烤箱固化在升高的温度下48小时,然后正常固化显着改善了休眠抗压强度的结果。

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