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Study on the Microstructure of the New Paste of Recycled Aggregate Self-Compacting Concrete

机译:再生骨料自密实混凝土新浆的微观结构研究

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摘要

Previous literature indicates a decrease in the mechanical properties of various concrete types that contain recycled aggregates (RA), due to their porosity and to their interface of transition zone (ITZ). However, other components of the RA concrete microstructure have not yet been explored, such as the modification of the new paste (NP) with respect to a reference concrete. This paper deals with the microstructure of the new paste of self-compacting concrete (SCC) for different levels of RA. The water to binder ratio (w/b) was kept constant for all concrete mixtures, and equal to 0.5. The SCC mixtures were prepared with percentages of coarse RA of 0%, 30%, 50% and 100%. Mercury intrusion porosimetry test (MIP) and scanning electron microscope (SEM) observations were conducted on the new paste of each concrete. The results indicated that the porosity of the new paste presents a significant variation for replacement percentages of 50% and 100% with respect to NP0 and NP30. However, RA contributed to the refinement of the pore structure of the new paste. The amount of macrospores the diameter of which is in the 50–10,000 nm range was reduced to 20% for NP50 and NP100, while it was about 30% for NP0 and NP30, attributed to the water released by RA. Compressive strength loss for SCC50 and SCC100 concretes are both influenced by porosity of RA, and by the NP porosity. The latter is similar for these two concretes with the 26% increase compared to a reference concrete.
机译:先前的文献表明,由于其孔隙率和过渡区界面(ITZ)的原因,包含再生骨料(RA)的各种混凝土的机械性能均下降。但是,尚未探索RA混凝土微观结构的其他组件,例如相对于参考混凝土对新浆(NP)进行修改。本文研究了用于不同RA水平的新型自密实混凝土浆(SCC)的微观结构。对于所有混凝土混合物,水与粘合剂之比(w / b)保持恒定,等于0.5。制备的SCC混合物的粗RA百分比为0%,30%,50%和100%。对每种混凝土的新浆进行了压汞法(MIP)和扫描电子显微镜(SEM)观察。结果表明,相对于NP0和NP30,新糊剂的孔隙率显示出50%和100%的替代百分比的显着变化。但是,RA有助于改善新浆料的孔结构。 NP50和NP100的直径在50–10,000 nm范围内的大孢子数量减少到20%,而NP0和NP30的大孢子数量减少到30%,这归因于RA释放的水。 SCC50和SCC100混凝土的抗压强度损失均受RA孔隙率和NP孔隙率的影响。这两种混凝土的后者相似,与参考混凝土相比增加了26%。

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