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Fibre distribution and orientation of macro-synthetic polyolefin fibre reinforced concrete elements

机译:宏观合成聚烯烃纤维混凝土构件的纤维分布和取向

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摘要

Fracture behaviour of polyolefin fibre reinforced concrete (PFRC) has proved to be suitable for structural design in construction elements. As in other fibre reinforced materials, the tensile behaviour is strongly affected by the positioning of the fibres. Previous research has assessed this influence by means of fracture tests, showing reliable results. These were obtained by changing the most influencing parameters: the fibre length, the pouring and compaction methods, the concrete type and specimen sizes. However, the influence of these factors in fracture results is merely limited to the fracture surfaces, while the positioning of the fibres in the rest of the piece may be a key factor for design in structural elements. Furthermore, examination of the orientation factor within the whole piece provides relevant information about the behaviour of the fibres during the pouring processes. It may also allow preparation of future models to predict the final positioning of the fibres. This paper examines the positioning and orientation of the fibres in elements which provided fracture results previously reported in the literature. In addition to counting the fibres located in the fracture surfaces, the specimens were divided in portions. The fibre positioning maps obtained provide sound and useful conclusions that may be considered in future design of PFRC elements. The data gathered showed how the orientation-factor varied with the flux and vibration, absence of any tendency to float and the noticeable influence of the pouring point in fibre distribution. It also showed that this type of fibre is suitable for structural-size elements, improving the orientation factor for longer distances when using self-compacting concrete. (C) 2016 Elsevier Ltd. All rights reserved.
机译:事实证明,聚烯烃纤维混凝土(PFRC)的断裂行为适用于建筑构件的结构设计。与其他纤维增强材料一样,拉伸行为会受到纤维位置的强烈影响。先前的研究已经通过断裂试验评估了这种影响,显示了可靠的结果。这些是通过改变影响最大的参数获得的:纤维长度,浇注和压实方法,混凝土类型和试样尺寸。但是,这些因素对断裂结果的影响仅限于断裂面,而纤维在部件其余部分的定位可能是结构元件设计中的关键因素。此外,检查整块中的取向因子可提供有关浇铸过程中纤维行为的相关信息。它还可能允许准备将来的模型,以预测纤维的最终位置。本文研究了纤维在元素中的定位和取向,这些元素提供了先前文献中报道的断裂结果。除了对位于断裂表面的纤维进行计数外,还将样品分成几部分。所获得的光纤定位图提供了合理有用的结论,这些结论可以在PFRC元件的未来设计中加以考虑。收集的数据表明取向因子如何随通量和振动而变化,没有任何漂浮的趋势,并且倾点对纤维分布有明显的影响。研究还表明,这种类型的纤维适用于结构尺寸的元件,在使用自密实混凝土时,可改善较长距离时的定向系数。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Construction and Building Materials》 |2016年第30期|505-517|共13页
  • 作者单位

    Univ Politecn Madrid, Dept Ingn Civil Construct ETS Ingenieros Caminos, C Prof Aranguren S-N, E-28040 Madrid, Spain;

    Univ Politecn Madrid, Dept Ingn Civil Construct ETS Ingenieros Caminos, C Prof Aranguren S-N, E-28040 Madrid, Spain;

    Univ Politecn Madrid, Dept Ingn Civil Construct ETS Ingenieros Caminos, C Prof Aranguren S-N, E-28040 Madrid, Spain;

    Univ Politecn Madrid, Dept Ingn Civil Construct ETS Ingenieros Caminos, C Prof Aranguren S-N, E-28040 Madrid, Spain;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Fibre reinforced concrete; Polyolefin fibres; Macro-synthetic fibres; Fibre orientation; Orientation factor;

    机译:纤维增强混凝土;聚烯烃纤维;宏观合成纤维;纤维取向;取向系数;

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