Bond behavior of reinforcing steel bars in metakaolin – calcium carbide residue-based geopolymer concrete

IF 1.5 Q2 ENGINEERING, MULTIDISCIPLINARY
Jacqueline Obeng, Anthony Andrews, Mark Adom-Asamoah, Jones Owusu-Twumasi
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Abstract

The bond property of concrete is a key characteristic of concrete that affect the structural activity of reinforced concrete beams. Concrete produced from geopolymer has the prospect to replace concrete produced from ordinary Portland cement (OPC) for structural applications. Therefore, this research evaluates the bond behavior of metakaolin-calcium carbide residue (CCR)-based geopolymer concrete for use in in situ structural applications. Comparative studies were carried out on concrete made of geopolymer and OPC. The embedment lengths (5ϕ and 7ϕ) and reinforcing bar diameters (14 and 16 mm) were varied and the bonding activity of the different concrete types was studied. Additionally, the qualities of the concrete produced were assessed, including density, ultrasonic pulse velocity, and compressive and flexural strengths. Generally, the metakaolin-CCR-based geopolymer concrete samples had the best mechanical properties, followed by metakaolin-based geopolymer and OPC concrete, respectively. Bond activity enhanced when embedment length and diameter of reinforcement were reduced in all types of concrete. Thus, with a reinforcing bar diameter of 14 mm and an embedment length of 5ϕ, the average bond strength of the metakaolin-CCR-based geopolymer concrete was 14.3MPa, which was 18.87% and 105.46% higher than that of the metakaolin-based geopolymer and OPC concrete, respectively. Influenced by experimental conclusions, it can be established that the metakaolin-CCR-based geopolymer concrete has the capacity to be used in place of OPC concrete in bond applications where steel reinforcing bars are employed.
偏高岭土-电石渣土工聚合物混凝土中钢筋的粘结行为
混凝土的粘结性能是影响钢筋混凝土梁结构活性的关键特性。由土工聚合物生产的混凝土有望在结构应用中取代由普通硅酸盐水泥(OPC)生产的混凝土。因此,本研究评估了基于偏高岭土-电石渣(CCR)的土工聚合物混凝土在现场结构应用中的粘结行为。对土工聚合物和 OPC 混凝土进行了比较研究。研究人员改变了预埋长度(5ϕ和 7ϕ)和钢筋直径(14 毫米和 16 毫米),并对不同类型混凝土的粘结活性进行了研究。此外,还对混凝土的质量进行了评估,包括密度、超声波脉冲速度、抗压强度和抗折强度。总体而言,以偏高岭土-CCR 为基础的土工聚合物混凝土样品具有最佳的力学性能,其次分别是以偏高岭土为基础的土工聚合物混凝土和 OPC 混凝土。在所有类型的混凝土中,当预埋长度和钢筋直径减小时,粘结活性都会增强。因此,当钢筋直径为 14 mm、预埋长度为 5ϕ 时,偏高岭土-CCR 基土工聚合物混凝土的平均粘结强度为 14.3MPa,分别比偏高岭土基土工聚合物混凝土和 OPC 混凝土高出 18.87% 和 105.46%。受实验结论的影响,可以确定偏高岭土-CCR 基土工聚合物混凝土有能力在使用钢筋的粘结应用中替代 OPC 混凝土。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Engineering Research Express
Engineering Research Express Engineering-Engineering (all)
CiteScore
2.20
自引率
5.90%
发文量
192
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