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Mechanical Properties and Eco-Efficiency of Steel Fiber Reinforced Alkali-Activated Slag Concrete

机译:钢纤维增强碱渣混凝土的力学性能和生态效益

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摘要

Conventional concrete production that uses ordinary Portland cement (OPC) as a binder seems unsustainable due to its high energy consumption, natural resource exhaustion and huge carbon dioxide (CO2) emissions. To transform the conventional process of concrete production to a more sustainable process, the replacement of high energy-consumptive PC with new binders such as fly ash and alkali-activated slag (AAS) from available industrial by-products has been recognized as an alternative. This paper investigates the effect of curing conditions and steel fiber inclusion on the compressive and flexural performance of AAS concrete with a specified compressive strength of 40 MPa to evaluate the feasibility of AAS concrete as an alternative to normal concrete for CO2 emission reduction in the concrete industry. Their performances are compared with reference concrete produced using OPC. The eco-efficiency of AAS use for concrete production was also evaluated by binder intensity and CO2 intensity based on the test results and literature data. Test results show that it is possible to produce AAS concrete with compressive and flexural performances comparable to conventional concrete. Wet-curing and steel fiber inclusion improve the mechanical performance of AAS concrete. Also, the utilization of AAS as a sustainable binder can lead to significant CO2 emissions reduction and resources and energy conservation in the concrete industry.
机译:使用普通波特兰水泥(OPC)作粘合剂的常规混凝土生产似乎不可持续,因为它消耗大量能量,消耗自然资源并产生大量二氧化碳(CO2)。为了将混凝土生产的常规过程转变为更具可持续性的过程,人们已经认识到,用新的粘合剂(如粉煤灰和碱活化矿渣(AAS))替代现有工业副产品中的高能耗PC是替代方法。本文研究了养护条件和钢纤维夹杂物对规定抗压强度为40 MPa的AAS混凝土的压缩和挠曲性能的影响,以评估AAS混凝土作为普通混凝土替代CO2减排的可行性。 。将其性能与使用OPC生产的参考混凝土进行比较。根据测试结果和文献数据,还通过粘合剂强度和CO2强度评估了AAS用于混凝土生产的生态效率。测试结果表明,可以生产具有与传统混凝土相当的抗压和抗弯性能的AAS混凝土。湿固化和钢纤维夹杂物改善了AAS混凝土的机械性能。同样,使用AAS作为可持续的粘合剂可以在混凝土行业中显着减少CO2排放并节省资源和能源。

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