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Performance of Concrete Incorporating Colloidal Nano-Silica

机译:掺入胶体纳米二氧化硅的混凝土性能

摘要

Nanotechnology, as one of the most modern fields of science, has great market potential and economic impact. The need for research in the field of nanotechnology is continuously on the rise. During the last few decades, nanotechnology was developing rapidly into many fields of applied sciences, engineering and industrial applications, especially through studies of physics, chemistry, medicine and fundamental material science. These new developments may be attributed to the fact that material properties and performance can be significantly improved and controlled through nano-scale processes and nano-structures. This research program aims at 1) further understanding the behavior of cementitious materials when amended on the nano-scale level and 2) exploring the effect of this enhancement on the microstructure of cement matrix. This study may be considered as an important step towards better understanding the use of nano-silica in concrete. The main goal of the study is to investigate the effect of using colloidal nano-silica on properties of concrete, including mechanical properties, durability, transport properties, and microstructure. The experimental program that was conducted included a laboratory investigation of concrete mixtures in which nano-silica was added to cement or to a combination of cement and Class F fly ash. Various ratios of nano-silica were used in concrete mixtures to examine the extent and types of improvements that could be imparted to concrete. The conducted experimental program assessed these improvements in terms of reactivity, mechanical properties, and durability of the mixtures under investigation. Advanced testing techniques - including mercury intrusion porosimetry (MIP) and scanning electron microscopy (SEM) - were used to investigate the effect of nano-silica on the microstructure of the tested mixtures. In addition, the effect of nano-silica on the alkali-silica reaction (ASR) was examined using various techniques, including testing of accelerated mortar-bar and strength. Furthermore, this study investigated the deterioration of concrete caused by salt crystallization in concrete pores. This physical effect of salt on concrete may cause significant damage under certain environmental conditions in regions where soil is laden with large amounts of certain salts. The effect of nano-silica on this special type of environmental attack was explored by means of a new non-standard testing procedure, including the simulation of changing seasons, on concrete specimens partially immersed in salt solution. These concrete specimens represented concrete structures with foundations in salt-rich soils.
机译:纳米技术作为最现代的科学领域之一,具有巨大的市场潜力和经济影响。纳米技术领域的研究需求正在不断上升。在过去的几十年中,纳米技术正迅速发展到应用科学,工程和工业应用的许多领域,尤其是通过对物理,化学,医学和基础材料科学的研究。这些新的发展可能归因于以下事实:可以通过纳米级工艺和纳米结构显着改善和控制材料特性和性能。该研究计划的目的是:1)进一步了解水泥材料在纳米级水平上的行为,以及2)探索这种增强作用对水泥基体微观结构的影响。这项研究可以被认为是更好地了解纳米二氧化硅在混凝土中使用的重要一步。该研究的主要目的是研究使用胶体纳米二氧化硅对混凝土性能的影响,包括机械性能,耐久性,运输性能和微观结构。进行的实验计划包括对混凝土混合物进行实验室研究,其中将纳米二氧化硅添加到水泥中或水泥和F级粉煤灰的混合物中。在混凝土混合物中使用各种比例的纳米二氧化硅,以检查可赋予混凝土的改进程度和类型。进行的实验程序在研究的混合物的反应性,机械性能和耐久性方面评估了这些改进。先进的测试技术-包括压汞法(MIP)和扫描电子显微镜(SEM)-用于研究纳米二氧化硅对测试混合物微观结构的影响。另外,使用各种技术检查了纳米二氧化硅对碱二氧化硅反应(ASR)的影响,包括加速砂浆棒和强度的测试。此外,这项研究还研究了盐在混凝土孔隙中结晶引起的混凝土劣化。盐对混凝土的这种物理作用在某些环境条件下,在土壤中富含大量某些盐的区域中可能会造成重大破坏。通过一种新的非标准测试程序(包括模拟季节变化的模拟),探索了纳米二氧化硅对这种特殊类型的环境侵蚀的影响,该程序对部分浸入盐溶液的混凝土标本进行了模拟。这些混凝土标本代表了在富盐土壤中具有基础的混凝土结构。

著录项

  • 作者

    Zeidan Mohamed Sabry;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 English
  • 中图分类

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