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Synergistic Effects of Polypropylene and Glass Fiber on Mechanical Properties and Durability of Recycled Aggregate Concrete

机译:聚丙烯和玻璃纤维对再生骨料混凝土力学性能和耐久性的协同作用

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To better understand the synergistic effects of combined fibers on mechanical properties and durability of recycled aggregate concrete (RAC), different types of fibers with various?lengths and mass ratios were adopted in this study. Experimental investigations were conducted to study the 28-day compressive strength and strength loss after exposed to?salt-solution freeze–thaw cycles and the coupled action of mechanical loading and salt-solution freeze–thaw cycles. The microstructure was also characterized to evaluate the mechanism of this synergistic effect. To determine the effectiveness of the combined fibers on improving the mechanical properties and durability of RAC, the synergistic coefficient was proposed and applied for various combinations of fibers. The results indicate that the incorporation of fibers slightly decreased the 28-day compressive strength of RAC, but combining different sizes and types of fibers can mitigate this negative effect. Moreover, the incorporation of fibers greatly improves the freeze–thaw resistance of RAC. The combining different fibers exhibited a synergistic effect on the enhancement in properties?of RAC, which could not be predicted with only one simplistic rule of fibre mixtures. In addition, microstructural characterization shows that the bonding strength of the interfacial transition zone (ITZ) between the fiber and cement matrix is mainly determined by the chemical bonding force which is?due to the hydration reaction between fiber surface and cement matrix.
机译:为了更好地理解合并纤维对再生骨料混凝土(RAC)的机械性能和耐久性的协同作用,本研究采用了不同类型的纤维,在本研究中采用了各种纤维。进行实验研究以研究暴露于盐溶液冻融循环后28天的抗压强度和强度损失,以及机械加载和盐溶液冷冻循环的偶联作用。微观结构的特征还表明,评估了这种协同效应的机制。为了确定组合纤维对改善RAC的机械性能和耐久性的有效性,提出了协同系数,并施加了各种纤维组合。结果表明,纤维的掺入略微降低了RAC的28天压缩强度,但结合不同尺寸和类型的纤维可以减轻这种负面影响。此外,纤维的掺入大大提高了RAC的冻融抗性。结合不同的纤维对RAC的性质增强表现出协同作用,这可以仅通过一种简单的纤维混合物规则预测。另外,微结构表征表明,纤维和水泥基质之间的界面过渡区(ITZ)的粘接强度主要由化学粘合力决定,所述化学键合力是由于纤维表面和水泥基质之间的水化反应。

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