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Understanding the Effect of Nanosilica Incorporation on Dicalcium Silicate Hydration using Terahertz Spectroscopy

机译:使用太赫兹光谱技术了解掺入纳米二氧化硅对硅酸二钙水合的影响

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摘要

Ordinary Portland Cement (OPC) primarily constitutes Tricalcium Silicate (C3S) and Dicalcium Silicate (C2S) making up 60-70 % and 20-30 % of the cement matrix respectively. During cement hydration. C3S starts to react faster contributing to early stage strength in comparison to C2S, which reacts slowly and is responsible for long term strength development of concrete. C2S is manufactured at lower temperatures compared to C3S, resulting in lesser emission of carbon dioxide as compared to C3S. Moreover. C2S produces less Ca(OH)_2 than C3S, which is an undesirable hydration product. Thus, incorporation of greater percentages of C2S in cement matrix will be highly beneficial, provided it's early stage reactivity can be increased. One of the key methods to increase reactivity of C2S is incorporating nanosilica which accelerates the hydration along with the formation of greater amount of calcium silicate hydrate (C-S-H) which is responsible for the strength development of concrete. Hence, understanding the acceleration in hydration dynamics of the nanosilica incorporated β-C2S can help in optimizing the percentages of C3S and C2S in cement. In this study. Terahertz spectroscopy has been employed to track the acceleration of hydration of C2S due to the addition of nanosilica. Results show early stage reduction in peak height of the resonance around 520 cm~(-1) in nanosilica incorporated sample which indicates faster hydration of C2S during hydration. Furthermore, early stage formation of a prominent resonance around 453 cm~(-1) for the nanosilica incorporated C2S sample implies formation of C-S-H like structures confirming the accelerated hydration rate.
机译:普通硅酸盐水泥(OPC)主要构成硅酸三钙(C3S)和硅酸二钙(C2S),分别占水泥基质的60-70%和20-30%。在水泥水化过程中。与C2S相比,C3S开始反应更快,从而对早期强度有所贡献,而C2S反应缓慢,并负责混凝土的长期强度发展。与C3S相比,C2S的生产温度更低,因此与C3S相比,二氧化碳的排放量更少。此外。与不希望的水合产物C3S相比,C2S产生的Ca(OH)_2少。因此,在水泥基质中掺入较高百分比的C2S将是非常有益的,只要可以提高其早期反应性即可。提高C2S反应性的关键方法之一是掺入纳米二氧化硅,该二氧化硅可促进水合作用,同时形成大量的硅酸钙水合物(C-S-H),这负责混凝土的强度发展。因此,了解掺入β-C2S的纳米二氧化硅水化动力学的加速可以帮助优化水泥中C3S和C2S的百分比。在这个研究中。由于添加了纳米二氧化硅,太赫兹光谱已用于追踪C2S水化的加速。结果表明,在掺入纳米二氧化硅的样品中,共振峰高的早期降低在520 cm〜(-1)左右,这表明水合过程中C2S的水合更快。此外,掺入纳米二氧化硅的C2S样品在453 cm〜(-1)附近的明显共振的早期形成暗示了C-S-H样结构的形成,证实了加速的水合速率。

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  • 会议地点 San Francisco(US)
  • 作者单位

    CSIR-Central Electronics Engineering Research Institute, CSIR Madras Complex, Chennai, India,Academy of Scientific and Innovative Research, CSIR-SERC, Chennai, India;

    CSIR-Central Electronics Engineering Research Institute, CSIR Madras Complex, Chennai, India,Academy of Scientific and Innovative Research, CSIR-SERC, Chennai, India;

    CSIR-Central Electronics Engineering Research Institute, CSIR Madras Complex, Chennai, India,Academy of Scientific and Innovative Research, CSIR-SERC, Chennai, India;

    CSIR-Structural Engineering Research Centre, CSIR Madras Complex, Chennai, India,Academy of Scientific and Innovative Research, CSIR-SERC, Chennai, India;

    CSIR-Central Electronics Engineering Research Institute, CSIR Madras Complex, Chennai, India,Academy of Scientific and Innovative Research, CSIR-SERC, Chennai, India;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Terahertz Spectroscopy; Dicalcium Silicate hydration; Nanosilica;

    机译:太赫兹光谱;硅酸二钙水合;纳米二氧化硅;

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