磨粒化炉渣对高性能纤维增强胶凝复合材料抗压强度和延性的影响

Gideon Ayim-Mensah , Milan Radosavljevic
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引用次数: 1

摘要

超高性能纤维增强胶凝复合材料(UHPFRCC)的机械性能主要受纤维类型和活性粘合剂的影响。纤维主要影响延展性,而反应性粘结剂影响UHPFRCC的抗压强度。在常用的反应性粘结剂中,高炉磨粒渣(SL)由于其玻璃体性质,对UHPFRCC的抗压强度和延性都有影响。研究了SL水泥替代率为0%、20%、40%、60%、75%和90%的6种不同混合料的微观结构和力学性能。XRD结果表明,C-S-H和钙矾石含量的增加会延缓水化过程,导致抗压强度降低,反之亦然。在不使用纤维的情况下,sl胶凝复合材料的抗压强度高达108.1MPa,延展性高达1.67%。当SL含量为40%时,水泥的抗压强度和延性最大,而当SL含量为60%和20%时,水泥的抗压强度和延性最小。此外,当水泥在胶凝复合材料中掺入40% SL时,可获得最佳力学性能(即抗压强度、抗拉强度、抗折强度和抗拉应变)。
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Influence of Ground Granulated Blast Furnace Slag on the compressive strength and ductility of Ultra High-performance fibre reinforced cementitious composites

The mechanical properties of Ultra High Performance Fibre Reinforced Cementitious Composite (UHPFRCC) is basically influenced by the type of fibres and reactive binders used. Fibres primarily influence the ductility whereas reactive binders influence the compressive strength of UHPFRCC. Among the commonly used reactive binders, Ground Granulated Blast Furnace Slag (SL) with its vitreous nature has the ability of influencing both the compressive strength and ductility of UHPFRCC. This study discussed the microstructure and mechanical properties of six different mixtures made up of 0%, 20%, 40%, 60% 75% and 90% cement replacement of SL. The XRD results indicated that, increased levels of C-S-H and ettringite retard the hydration process leading to lower compressive strength and vice versa. The SL-cementitious composite can achieve a compressive strength of up to 108.1MPa and ductility of up to 1.67% without the use of fibres. The maximum compressive strength and ductility were achieved with 40% SL replacement of cement whereas the minimum compressive strength and ductility were achieved with 60% and 20% SL contents, respectively. Moreover, the optimum mechanical properties (i.e. compressive strength, tensile strength, flexural strength, and tensile strain) were achieved with a 40% SL replacement of cement in the cementitious composite.

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