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首页> 外文期刊>Waste and biomass valorization >Microstructural Analysis and Strength Development of One-Part Alkali-Activated Slag/Ceramic Binders Under Different Curing Regimes
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Microstructural Analysis and Strength Development of One-Part Alkali-Activated Slag/Ceramic Binders Under Different Curing Regimes

机译:不同固化制度下单部分碱活性炉渣/陶瓷粘合剂的微观结构分析及强度发展

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摘要

Alkali-activated binders have shown great potential in the reuse of industrial waste materials and have therefore received significant attention. The use of one-part or a "just-add-water" alkali-activated binder aims to avoid the use of alkali-activator solutions which have traditionally been utilized in two-part systems. By using a solid activator, the disadvantages posed by hazardous liquid activators (such as the difficulties of using them on-site) can be minimized. Ceramic materials represent a considerable fraction of construction and demolition wastes, and originate not only from the building process, but also as tiles from industry and rejected bricks. Besides using these waste materials as road sub-base or construction backfill materials, they can also be employed as supplementary cementitious materials or even as raw material for alkali-activated binders. This paper presents the strength development and microstructural results obtained from examining different compositions under various curing conditions (sealing, ambient, and submerged in water). Two different ceramic wastes (with and without firing) were used as a partial replacement (5-10% by mass) of ground granulated blast-furnace slag. Specimens were then cured under three different curing regimes, including: (1) plastic-sealed, (2) unsealed at ambient conditions with an average temperature of 23 °C and 35% RH, and (3) submerged in water until the test date. Mechanical testing (compressive and flexural strengths) and microstructural analysis (SEM/EDX, XRD, MIP, heat of hydration, TGA, and DTA) were used to determine the effects of curing conditions. The results showed that ceramic waste content and type, as well as curing regimes, greatly affect the chemical reaction products, strength development, and structural stability.
机译:碱活化的粘合剂在工业废料的再利用中显示出巨大的潜力,因此受到显着的关注。使用单部分或“刚性加水”碱活化粘合剂旨在避免使用传统上已在两部分系统中使用的碱活化剂溶液。通过使用固体活化剂,可以使危险液体活化剂(例如在现场使用它们的困难)构成的缺点。陶瓷材料代表了相当大的建筑和拆迁废物,不仅来自建筑工程,而且也是来自工业和拒绝砖的瓷砖。除了使用这些废料作为道路底座或施工回填材料外,它们还可以用作补充胶质材料,甚至作为碱活化粘合剂的原料。本文介绍了在各种固化条件下检查不同组合物(密封,环境和浸没在水中)的强度发展和微观结构结果。两种不同的陶瓷废物(具有和不烧制)用作地面粒状高炉炉渣的部分替代(5-10质量%)。然后在三种不同的固化制度下固化样品,包括:(1)塑料密封,(2)在环境条件下未密封,平均温度为23℃和35%RH,(3)浸没在水中直至测试日期。使用机械测试(压缩和弯曲强度)和微观结构分析(SEM / EDX,XRD,MIP,水合热,TGA和DTA)来确定固化条件的影响。结果表明,陶瓷废物含量和类型,以及固化制度,大大影响化学反应产物,强度发展和结构稳定性。

著录项

  • 来源
    《Waste and biomass valorization》 |2020年第6期|3081-3096|共16页
  • 作者单位

    Fibre and Particle Engineering Faculty of Technology University of Oulu P.O. Box 4300 90014 Oulu Finland;

    Fibre and Particle Engineering Faculty of Technology University of Oulu P.O. Box 4300 90014 Oulu Finland;

    Fibre and Particle Engineering Faculty of Technology University of Oulu P.O. Box 4300 90014 Oulu Finland;

    Department of Materials Environmental Sciences and Urban Planning - SIMAU Universita Politecnica delle Marche UdR INSTM 60131 Ancona Italy;

    Department of Materials Environmental Sciences and Urban Planning - SIMAU Universita Politecnica delle Marche UdR INSTM 60131 Ancona Italy;

    Department of Materials Environmental Sciences and Urban Planning - SIMAU Universita Politecnica delle Marche UdR INSTM 60131 Ancona Italy;

    Fibre and Particle Engineering Faculty of Technology University of Oulu P.O. Box 4300 90014 Oulu Finland;

    Fibre and Particle Engineering Faculty of Technology University of Oulu P.O. Box 4300 90014 Oulu Finland;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    One-part alkali-activated binders; Ceramic wastes; Curing conditions; Mechanical properties;

    机译:一部分碱活性粘合剂;陶瓷废物;固化条件;机械性能;

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