Potential of Anthill Soil as a Pozzolan in Concrete

J. Kamau, Ash Ahmed, J. Kangwa
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引用次数: 1

Abstract

Cement is the most utilised construction material and the second most consumed commodity in the world after water. It has been reported that the heavily energy-intensive processes that are involved in its production account for about 7 to 10 % of the total global anthropogenic carbon dioxide (CO2), which is the main cause of climate change; and are also expensive economically. Energy and cost efficiency can however be achieved by reducing on the amount of clinker, and in its place utilising pozzolans, which require less process heating and emit lower levels of CO2. This research aimed to provide an original contribution to the body of knowledge by investigating Anthill Soil (AHS) for pozzolanic properties. Cement was replaced in concrete with AHS by weight using 5% increments by weight, from 0 to 30% at the point of need. Durability was investigated using the water absorption and sulfate tests. Results of the chemical analysis by X-Ray Diffraction (XRD) showed that AHS contained the chemical composition required for pozzolans, and the compressive strengths achieved were for classes that are listed by standards as being durable and suitable for structural applications. The behaviour of AHS in workability, density, gain in compressive strength over time, water absorption and sulfate tests were also consistent with the characteristics of pozzolans, leading to a conclusion that it may be suitable for use as a pozzolan to improve the properties of concrete, reduce on the harmful effects of cement production to the environment and lower the overall cost of concrete, allowing for the construction of low cost buildings.
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蚁丘土在混凝土中作为灰岩的潜力
水泥是世界上使用最多的建筑材料,也是仅次于水的第二大消费商品。据报道,在其生产过程中涉及的高度能源密集型过程约占全球人为二氧化碳总量的7%至10%,这是气候变化的主要原因;而且经济上也很昂贵。然而,能源和成本效率可以通过减少熟料的数量来实现,并利用火山灰代替熟料,这需要更少的过程加热和排放更低水平的二氧化碳。本研究旨在通过研究蚁丘土壤(AHS)的火山性质,为知识体系提供原创性贡献。水泥在混凝土中被AHS取代,按重量增加5%,根据需要从0到30%不等。采用吸水性和硫酸盐试验对其耐久性进行了研究。x射线衍射(XRD)化学分析结果表明,AHS含有火山灰所需的化学成分,其抗压强度达到标准所列的耐用和适合结构应用的等级。AHS在和易性、密度、随时间增加的抗压强度、吸水率和硫酸盐测试方面的表现也与火山灰的特性一致,从而得出结论,它可能适合作为火山灰使用,以改善混凝土的性能,减少水泥生产对环境的有害影响,降低混凝土的总体成本,从而可以建造低成本的建筑物。
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