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Mechanical properties and performance of high volume fly ash roller compacted concrete containing crumb rubber and nano silica

机译:含碎屑橡胶和纳米二氧化硅的大体积粉煤灰碾压混凝土的力学性能和性能

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This study deals with the development of an environmentally sustainable roller-compacted concrete (RCC) using high-volume fly ash (HVFA) and crumb rubber as partial replacement for cement and fine aggregate respectively, and nano-silica as an additive to cementitious materials. Response surface methodology (RSM) was used to design, develop statistical models, and carry out the optimization for the mixtures using the variables crumb rubber, HVFA, and nano-silica. The responses used for the RSM are compressive, flexural, and splitting tensile strengths. The proposed models demonstrated a high correlation among the variables and responses. An optimised HVFA RCC mix can be achieved by partially replacing 10% fine aggregate with crumb rubber by volume, replacing 53.72% of cement with fly ash by volume, and the addition of 1.22% nano-silica by weight of cementitious materials. Further experimental investigations showed that the HVFA RCC pavement exhibited lower fresh density, Vebe time, compressive strength, splitting tensile strength, flexural strength, modulus of elasticity, abrasion resistance, and impact resistance compared to conventional (control) RCC pavement. These effects further escalate with increase in partial replacement of fine aggregate with crumb rubber. On the other hand, nano-silica increases the mechanical properties and performance of HVFA RCC pavement with or without crumb rubber. This is because of the ability of nano-silica to partially mitigate the negative effect of crumb rubber on the properties of HVFA RCC by densifying the interfacial transition zone between the cement matrix and crumb rubber and filling the pores in the hardened cement matrix. Furthermore, nano-silica partially ignited the pozzolanic reactivity of fly ash at early ages which leads to higher performance of HVFA RCC pavement at early age. (C) 2018 Elsevier Ltd. All rights reserved.
机译:这项研究致力于开发一种环境可持续的碾压混凝土(RCC),该碾压混凝土使用高粉煤灰(HVFA)和碎橡胶分别替代水泥和细骨料的部分替代品,以及纳米二氧化硅作为胶凝材料的添加剂。响应面方法(RSM)用于设计,开发统计模型,并使用变量橡胶屑,HVFA和纳米二氧化硅对混合物进行优化。用于RSM的响应是抗压强度,挠曲强度和劈裂抗张强度。所提出的模型证明了变量和响应之间的高度相关性。可以通过以下方式实现优化的HVFA RCC混合料:部分用碎橡胶代替10%的细骨料,用粉煤灰代替按体积的53.72%的水泥,以及按胶凝材料的重量添加1.22%的纳米二氧化硅。进一步的实验研究表明,与常规(对照)RCC路面相比,HVFA RCC路面具有较低的新鲜密度,Vebe时间,抗压强度,劈裂抗张强度,抗弯强度,弹性模量,耐磨性和抗冲击性。随着用碎粒橡胶部分替代细骨料的增加,这些影响进一步升级。另一方面,无论有无碎橡胶,纳米二氧化硅都可提高HVFA RCC路面的机械性能和性能。这是由于纳米二氧化硅具有通过减轻水泥基体与胶粒之间的界面过渡区并填充硬化水泥基体中的孔的能力,部分缓解胶粒对HVFA RCC性能的负面影响的能力。此外,纳米二氧化硅在早期会部分点燃粉煤灰的火山灰反应性,从而导致HVFA RCC路面在早期具有更高的性能。 (C)2018 Elsevier Ltd.保留所有权利。

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