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Tensile behaviour and durability aspects of sustainable ultra-high performance concrete incorporated with GGBS as cementitious material

机译:掺有GGBS的可持续超高性能混凝土作为胶凝材料的拉伸性能和耐久性方面

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The supplementary cementitious materials (SCMs) are used as a substitute for the cement to reduce the environmental issues backed by concrete industry for the past three decades. Additionally, the use of industrial waste as SCMs can mitigate the wastes dumped in lagoons and landfills sites. Ground granulated blast furnace slag (GGBS) is one of the potential candidates as it possesses strength, durability, economic, and environmental benefits. In this study, GGBS is used in Ultra high performance concrete (UHPC) up to 80% replacement level of cement. Various properties such as flowability, compressive strength, tensile strength, fracture, and durability of UHPC with a high volume GGBS are experimentally evaluated under two curing conditions (Standard water and elevated temperature curing). Uniaxial tensile (UAT) strength test is conducted to determine the tensile strength for UHPC. The test results inferred that the hardened properties of GGBS based UHPC are significant upto 40% cement replacement level under standard water curing. Elevated temperature curing, improves its performance upto 60% replacement level. Finally, microstructure properties are studied using scanning electron microscopy which confirms the dense microstructure of UHPC with a high volume GGBS. (C) 2018 Elsevier Ltd. All rights reserved.
机译:补充胶凝材料(SCM)用作水泥的替代品,以减少过去三十年来混凝土行业支持的环境问题。此外,使用工业废物作为SCM可以减轻倾泻在泻湖和垃圾填埋场的废物。磨碎的高炉矿渣(GGBS)是潜在的候选者之一,因为它具有强度,耐用性,经济和环境效益。在这项研究中,GGBS用于水泥的替代含量高达80%的超高性能混凝土(UHPC)。在两种固化条件下(标准水和高温固化),通过实验评估了具有高体积GGBS的UHPC的各种性能,例如流动性,抗压强度,拉伸强度,断裂和耐久性。进行单轴拉伸(UAT)强度测试以确定UHPC的拉伸强度。测试结果表明,在标准水固化条件下,基于GGBS的UHPC的硬化性能高达40%的水泥替代水平。高温固化可将其性能提高到最高60%的替代水平。最后,使用扫描电子显微镜研究了微观结构特性,证实了具有高体积GGBS的UHPC的致密微观结构。 (C)2018 Elsevier Ltd.保留所有权利。

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