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Mechanical and Chloride Transport Performance of Particle Size Classified Limestone Blends.

机译:粒度分级石灰石混合物的机械和氯化物传输性能。

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摘要

The demand for portland cement concrete is expected to increase over time. There is a need to develop a more sustainable cementitious systems in order to reduce the negative environmental impacts associated with ordinary portland cement (OPC) production. An attempt is made to investigate sustainable binder solutions through the use of alternative cementitious materials at high levels of volume replacement. Limestone, an abundant material is used as a filler in low water-to-powder concretes where a substantial fraction of the portland cement remains unhydrated. At high volume OPC replacement, 20% and 35%, the combination of limestone and an alumina source has been shown to improve mechanical and durability performance. At 20% OPC replacement levels the migration coefficient which is an indication of chloride penetration in concrete is lower than the OPC control mixture at 28 and 56 days of hydration. The use of limestone with a similar particle size distribution to that of the OPC is used in each of these blended systems. A 20% binary limestone blend provide similar strength to an OPC mortar at all ages and comparable transport properties to that of the OPC concrete. Fly ash and metakaolin are the two alumina sources for the ternary blended mixes with concrete. The metakaolin shows the highest increase in the amount of hydration products formed out of all the mixes, including calcium-silicate-hydrate and carboaluminate phases in combination with limestone powder. At both levels of replacement the metakaolin blends show a substantially lower migration coefficient which is contributed to the smaller pore sizes found in the metakaolin blends. The fracture response of these systems show that at all replacement levels the ductility of the systems increase indicated by the large critical crack tip opening displacement. The fracture toughness is the highest for the blend containing metakaolin indicative of the smaller pore sizes allowing more dissipation of energy. An attempt is made to relate all mechanical and durability parameters to the reaction products and pore-structure developing at later ages.
机译:随着时间的流逝,对波特兰水泥混凝土的需求有望增加。为了减少与普通硅酸盐水泥(OPC)生产相关的负面环境影响,需要开发一种更具可持续性的胶结体系。试图通过使用替代胶结材料以高容量替代来研究可持续的粘合剂解决方案。石灰石是一种丰富的材料,可用于水灰比较低的混凝土中,其中大部分硅酸盐水泥仍未水合。在高容量的OPC替代品(20%和35%)下,石灰石和氧化铝源的组合已显示出可改善机械性能和耐久性能。在OPC替代含量为20%的情况下,表明氯离子在混凝土中渗透的迁移系数比水化28天和56天时的OPC对照混合物要低。这些混合体系中的每一种都使用粒度分布与OPC相似的石灰石。 20%的二元石灰石混合物在所有年龄段都提供与OPC砂浆相似的强度,并具有与OPC混凝土相当的运输性能。粉煤灰和偏高岭土是与混凝土三元混合的两种氧化铝源。偏高岭土在所有混合物(包括硅酸钙水合物和碳铝酸盐相与石灰石粉末)的混合中形成的水​​合产物数量增加最多。在两种置换水平下,偏高岭土共混物均显示出较低的迁移系数,这有助于使偏高岭土共混物中的孔径较小。这些系统的断裂响应表明,在所有替换水平下,系统的延展性都得到了提高,这是由较大的临界裂纹尖端开口位移所表明的。含偏高岭土的混合物的断裂韧性最高,表明较小的孔径允许更多的能量消散。试图将所有的机械和耐久性参数与反应产物和后来形成的孔结构联系起来。

著录项

  • 作者

    Aguayo, Matthew.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Engineering Civil.
  • 学位 M.S.
  • 年度 2014
  • 页码 105 p.
  • 总页数 105
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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