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Glass cullet as a new supplementary cementitious material (SCM).

机译:玻璃碎玻璃作为一种新型的辅助胶结材料(SCM)。

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摘要

Finely ground glass has the potential for pozzolanic reactivity and can serve as a supplementary cementitious material (SCM). Glass reaction kinetics depends on both temperature and glass composition. Uniform composition, amorphous nature, and high silica content of glass make ground glass an ideal material for studying the effects of glass type and particle size on reactivity at different temperature. This study focuses on how three narrow size ranges of clear and green glass cullet, 63--75 mum, 25--38 mum, and smaller than 25 mum, as well as combination of glass types and particle sizes affects the microstructure and performance properties of cementitious systems containing glass cullet as a SCM. Isothermal calorimetry, chemical shrinkage, thermogravimetric analysis (TGA), quantitative analysis of X-ray diffraction (XRD), and analysis of scanning electron microscope (SEM) images in backscattered (BS) mode were used to quantify the cement reaction kinetics and microstructure. Additionally, compressive strength and water sorptivity experiments were performed on mortar samples to correlate reactivity of cementitious materials containing glass to the performance of cementitious mixtures. A recently-developed modeling platform called "muic the model" was used to simulated pozzolanic reactivity of single type and fraction size and combined types and particle sizes of finely ground glass. Results showed that ground glass exhibits pozzolanic properties, especially when particles of clear and green glass below 25 mum and their combination were used at elevated temperatures, reflecting that glass cullet is a temperature-sensitive SCM. Moreover, glass composition was seen to have a large impact on reactivity. In this study, green glass showed higher reactivity than clear glass. Results also revealed that the simultaneous effect of sizes and types of glass cullet (surface area) on the degree of hydration of glass particles can be accounted for through a linear addition, reflecting that the surface area would significantly affect glass cullet reactivity and that the effects of SCM material interaction on reaction kinetics were minimal. However, mechanical properties of cementitious systems containing combined glass types and sizes behaved differently, as they followed the weaker portion of the two particles. This behavior was attributed to the pores sizes, distruibution, and connectiity. Simulations of combined glass types and sizes showed that more work on microstructural models is needed to properly model the reactivity of mixed glass particle systems.
机译:细磨的玻璃具有火山灰反应性的潜力,可以用作辅助胶结材料(SCM)。玻璃反应动力学取决于温度和玻璃组成。玻璃的均匀组成,无定形性质和高二氧化硅含量使磨玻璃成为研究玻璃类型和粒度对不同温度下反应性影响的理想材料。这项研究着眼于透明和绿色玻璃碎玻璃的三种窄尺寸范围(63--75微米,25--38微米和小于25微米),以及玻璃类型和粒度的组合如何影响微观结构和性能包含碎玻璃作为SCM的胶凝体系。等温量热法,化学收缩,热重分析(TGA),X射线衍射(XRD)定量分析以及背向散射(BS)模式的扫描电子显微镜(SEM)图像分析被用于量化水泥反应动力学和微观结构。另外,在砂浆样品上进行了抗压强度和吸水性试验,以使含玻璃的胶凝材料的反应性与胶凝混合物的性能相关。最近开发的建模平台称为“ muic the model”,用于模拟细磨玻璃的单一类型和级分大小以及组合类型和粒度的火山灰反应性。结果表明,毛玻璃具有火山灰性质,特别是当25毫米以下的透明和绿色玻璃颗粒及其组合在高温下使用时,反映出碎玻璃是对温度敏感的SCM。此外,发现玻璃组成对反应性具有很大的影响。在这项研究中,绿色玻璃比透明玻璃具有更高的反应性。结果还表明,可以通过线性添加来说明碎玻璃的尺寸和类型(表面积)对玻璃颗粒水化程度的同时影响,反映出表面积将显着影响碎玻璃的反应性,并且这种影响SCM材料相互作用对反应动力学的影响极小。但是,包含两种类型和尺寸的混合玻璃的胶凝体系的机械性能有所不同,因为它们遵循两种颗粒的较弱部分。这种行为归因于孔的大小,分布和连通性。组合玻璃类型和尺寸的模拟表明,需要在微观结构模型上做更多的工作才能正确地模拟混合玻璃颗粒系统的反应性。

著录项

  • 作者单位

    Kansas State University.;

  • 授予单位 Kansas State University.;
  • 学科 Engineering Civil.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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