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Effect of high-intensity sonication on the dispersion of carbon-based nanofilaments in cementitious composites, and its impact on mechanical performance

机译:高强度超声对水泥复合材料中碳基纳丝分散的影响及其对机械性能的影响

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摘要

Carbon-based nanofilaments are promising materials for improving the mechanical performance of cementitious composites. To date, the main challenge in their effective use has been controlling the dispersion of these additives in water and in the resulting mixed composites due to their strong van der Waals self-attraction and hydrophobic surfaces. This study uses high-intensity sonication to disperse different nanofilament types in water, and assesses their resulting reinforcing efficiency in cementitious composites. The proportion of nanofilaments used (in this case, multiwall carbon nanotubes MWCNTs, functionalized multiwall carbon nanotubes F-MWCNTs, and carbon nanofibres CNFs) was 0.025% by weight of cement. Aqueous dispersions were examined using transmission electron microscopy (TEM) and optical microscopy, and ultraviolet-visible (UV–vis) spectroscopy. Compressive, flexural and splitting tensile strengths tests, and porosity and density measurements, were used to evaluate the mechanical properties of the composites. High-intensity sonication over short durations significantly improved the dispersion, and reinforcing and filling effects, of carbon-based nanofilaments in cementitious composites, with increases in compressive strength of 24–32%, splitting tensile strength of 45–50%, and flexural toughness factor of 30–40%, observed after 28 days curing. A 17–26% reduction in the porosity of the composite materials was also recorded.
机译:基于碳的纳米丝是有前途的材料,用于提高水泥复合材料的机械性能。迄今为止,由于其强大的范德华自吸引力和疏水表面,它们有效使用的主要挑战已经控制了这些添加剂在水中的分散和所产生的混合复合材料。该研究使用高强度超声处理在水中分散不同的纳米丝类型,并评估它们在水泥复合材料中产生的增强效率。所用纳米丝的比例(在这种情况下,多壁碳纳米管MWCNTS,官能化的多壁碳纳米管F-MWCNT和碳纳米纤维CNFS)为0.025重量%的水泥。使用透射电子显微镜(TEM)和光学显微镜以及紫外线可见(UV-VIS)光谱检查含水分散体。使用压缩,弯曲和分裂拉伸强度试验和孔隙率和密度测量来评估复合材料的机械性能。短持续时间的高强度超声显着提高了水泥复合材料中碳基纳丝的分散体和增强和灌装效果,抗压强度的增加24-32%,分裂拉伸强度为45-50%,弯曲韧性因子30-40%,在28天固化后观察到。还记录了复合材料的孔隙率降低了17-26%。

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