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Deflection hardening behaviour of short fibre reinforced fly ash based geopolymer composites

机译:短纤维增强粉煤灰基地质聚合物复合材料的挠曲硬化行为

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摘要

This paper reports the newly developed ductile fibre reinforced geopolymer composite (DFRGC) exhibiting deflection hardening and multiple cracking behaviour. The binder of the above composite is different from that used in conventional cement based system. The class F fly ash is used instead of Portland cement in DFRGC and is activated by alkaline liquids (sodium hydroxide and sodium silicate). In this study, two types of fibres namely steel (ST) and polyvinyl alcohol (PVA) fibres are used in mono as well as in ST-PVA hybrid form, with a total volume fraction of 2%. The deflection hardening behaviour of newly developed DFRGC is also compared with that of conventional ductile fibre reinforced cementitious composites (DFRCC). The effects of two different sizes of sand (1.18 mm, and 0.6 mm) and sand/binder ratios of 0.5 and 0.75 on the deflection hardening and multiple cracking behaviour of both DFRGC and DFRCC are also evaluated. Results revel that the deflection hardening and multiple cracking behaviour is achieved in geopolymer based DFRGC similar to that of cement based system. For a given sand size and sand content, comparable deflection hardening behaviour, ultimate flexural strength and the deflection at peak load are observed in both cement and geopolymer based composites irrespective of fibre types and combination. The deflection hardening behaviour of DFRGC is also confirmed by the calculated toughness index values of I_(20) > 20. The scanning electron microscope (SEM) study shows no degradation of PVA and steel fibres in the geopolymer matrix. However, the bond of PVA fibre with geopolymer matrix is found to be higher than that with cement matrix as evidenced in the SEM pictures. An opposite trend is observed with steel fibre. The proposed development exhibit a significant benefit for the use of geopolymer based DFRGC over cement based system as the former one is green in terms of no cement use.
机译:本文报道了新开发的具有延展性硬化和多次开裂行为的韧性纤维增强地质聚合物复合材料(DFRGC)。上述复合材料的粘合剂不同于常规水泥基体系中使用的粘合剂。在DFRGC中使用F级粉煤灰代替波特兰水泥,并通过碱性液体(氢氧化钠和硅酸钠)活化。在这项研究中,两种类型的纤维,即钢(ST)和聚乙烯醇(PVA)纤维,既以单纤维形式也以ST-PVA混杂形式使用,总体积分数为2%。还将新开发的DFRGC的挠曲硬化行为与常规的韧性纤维增强水泥基复合材料(DFRCC)进行了比较。还评估了两种不同尺寸的砂(1.18 mm和0.6 mm)以及砂/粘结剂比为0.5和0.75对DFRGC和DFRCC的挠曲硬化和多次开裂行为的影响。结果表明,与水泥基体系相似,基于地聚合物的DFRGC可实现挠曲硬化和多次开裂行为。对于给定的沙子尺寸和沙子含量,无论纤维类型和组合如何,在水泥和地质聚合物基复合材料中均观察到相当的挠曲硬化性能,极限挠曲强度和峰值载荷下的挠曲。 DFRGC的挠曲硬化行为也可以通过计算出的I_(20)> 20的韧性指数值得到证实。扫描电子显微镜(SEM)研究表明,地质聚合物基质中PVA和钢纤维没有降解。然而,如SEM照片所示,发现PVA纤维与地质聚合物基体的结合高于与水泥基体的结合。对于钢纤维,观察到相反的趋势。提议的开发与基于水泥的系统相比,基于地聚合物的DFRGC的使用具有显着的优势,因为前一种在不使用水泥的情况下是绿色的。

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  • 来源
    《Materials & design》 |2013年第9期|674-682|共9页
  • 作者

    F.U.A. Shaikh;

  • 作者单位

    Dept. of Civil Engineering, Curtin University, Perth, Australia,GPO Box U1987, Perth, WA 6845, Australia;

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  • 正文语种 eng
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