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Durability of alumina silicate concrete based on slag/fly ash blends against corrosion

机译:基于矿渣/粉煤灰掺合料的硅酸铝混凝土的耐腐蚀性

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Purpose The durability of concrete structures, especially built-in corrosive environments, starts to deteriorate after 20-30 years, even though they have been designed for more than 60 years of service life. The durability of concrete depends on its resistance against a corrosive environment. Inorganic Polymer concrete, or geopolymer concrete, has been emerging as a new engineering material with the potential to form an alternative to conventional concrete for the construction industry. The purpose of this paper is to conduct the investigation on corrosion of the geopolymer materials prepared using GGBS blended with low calcium fly ash in different percentages and sodium hydroxide, sodium silicate as activators and cured in ambient conditions (25 +/- 5 degrees C). Design/methodology/approach GGBS was replaced by fly ash at different levels from 0 to 50 percent in a constant concentration of 12M. The main parameters of this study are the evaluation of strength characteristics of geopolymer concrete and resistance against corrosion by conducting accelerated corrosion test (Florida method). Findings From the test results it is observed that the strength of the geopolymer concrete with GGBS in ambient curing performs well compared to geopolymer concrete with GGBS blended with fly ash. The GPCE sample (40 percent replacement of fly ash to GGBS) shows better results and the resistance against corrosion was good, compared to all other mixes. Research limitations/implications - The outcomes of this investigation will be useful for the researchers and the construction industry. Practical implications - This paper results that optimum percentage of fly ash should be blended with GGBS against the corrosion attack. This investigation indicates that GGBS without the combination of fly ash can be utilized in a normal environment. These findings will definitely be useful for the ready-mix concrete manufacturers and the construction Industry. Social implications Disposal of industrial wastes causes pollution to the environment. Industrial wastes are utilized for the production of geopolymer concrete, which is the alternative material for the construction industry. Originality/value From the observation of the previous literature, till now there was no investigation on geopolymer concrete for corrosion under ambient curing conditions, as such this investigation could be considered as the new investigation.
机译:目的混凝土结构,特别是内置腐蚀环境的耐久性,即使设计使用寿命超过60年,也会在20-30年后开始下降。混凝土的耐久性取决于其对腐蚀性环境的抵抗力。无机聚合物混凝土或地聚合物混凝土已经作为一种新的工程材料出现,并有望成为建筑行业常规混凝土的替代品。本文的目的是对使用GGBS与不同百分比的低钙粉煤灰,氢氧化钠,硅酸钠作为活化剂混合并在环境条件(25 +/- 5摄氏度)下固化的地聚合物材料进行腐蚀研究。 。设计/方法/方法GGBS被粉煤灰替代,粉煤灰的浓度为0%至50%,浓度恒定为12M。这项研究的主要参数是通过进行加速腐蚀试验(佛罗里达方法)评估地质聚合物混凝土的强度特性和抗腐蚀性。从测试结果中可以发现,与GGBS掺粉煤灰的地聚合物混凝土相比,含GGBS的地聚合物混凝土在环境固化中的强度表现良好。与所有其他混合物相比,GPCE样品(用粉煤灰替代GGBS 40%的粉煤灰)显示出更好的结果,并且耐腐蚀性良好。研究的局限性/意义-该调查的结果将对研究人员和建筑业有用。实际意义-本文得出的结论是,应将最佳百分比的粉煤灰与GGBS混合以抵抗腐蚀。这项研究表明,不含粉煤灰的GGBS可以在正常环境中使用。这些发现对于预拌混凝土制造商和建筑业绝对有用。社会影响工业废物的处理会对环境造成污染。工业废物被用于生产地质聚合物混凝土,这是建筑行业的替代材料。独创性/价值从先前文献的观察来看,到目前为止,还没有关于在环境固化条件下对地聚合物混凝土进行腐蚀的研究,因此该研究可以被认为是新的研究。

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