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Influence of cement content and environmental humidity on asphalt emulsion and cement composites performance

机译:水泥含量和环境湿度对沥青乳液和水泥复合材料性能的影响

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摘要

Asphalt and cement concrete are the most popular materials used in the construction of roads, highways, bridge deck surface layers and pavements in airports and other areas with heavy wheel roads. Whereas asphalt possesses, compared to concrete, the advantages of a short curing period, high skid resistance and easy maintenance, it also shows lower fatigue durability, ravelling and rutting due to repeated concentrated loads and susceptibility to temperature changes and moisture. On the other hand, concrete pavements are initially more expensive, have lower driving comfort and are susceptible to cracking due to volume changes and to salt damage. A material with low-environmental impact and with advantages of both asphalt and concrete may be obtained by combining bitumen emulsions and a cementitious material. In this paper, cold asphalt mixtures with different amounts of cement were tested with Marshall stability tests. Selected mixtures were also cured at different environmental relative humidity (35, 70 and 90 % RH). By monitoring the mass of the specimens and estimating the water bound by the cement, the total water remaining in the mixtures was calculated. Details of the microstructure in the mixtures were examined with X-ray microtomography. According to the results of the present study, cement contributes to the hardening of cold asphalt mixtures both by creating cement paste bridges between the aggregates and by removing water from the mixtures through cement hydration. Asphalt and cement composites appear to be promising materials for implementation in real pavements, although their rate of hardening needs to be improved further.
机译:沥青和水泥混凝土是在机场和其他重型公路地区的道路,高速公路,桥面层和人行道的施工中最常用的材料。与混凝土相比,沥青具有固化时间短,抗滑性高和易于维护的优点,但由于反复的集中载荷以及对温度变化和湿气的敏感性,它的疲劳耐久性,撕裂和车辙也较低。另一方面,混凝土路面最初更昂贵,行驶舒适度较低,并且由于体积变化和盐分破坏而易于开裂。通过将沥青乳液和水泥质材料结合在一起,可以得到对环境影响小的材料,同时兼具沥青和混凝土的优点。在本文中,使用马歇尔稳定性测试对不同水泥含量的冷沥青混合料进行了测试。选定的混合物也要在不同的环境相对湿度(35、70和90%RH)下固化。通过监测样品的质量并估算水泥粘结的水,可以计算出混合物中剩余的总水量。用X射线显微断层摄影术检查混合物中的微观结构的细节。根据本研究的结果,水泥通过在骨料之间建立水泥浆桥,以及通过水泥水合作用从混合物中去除水,从而促进了冷沥青混合物的硬化。沥青和水泥复合材料似乎是有希望在实际人行道上实施的材料,尽管它们的硬化速率需要进一步提高。

著录项

  • 来源
    《Materials and structures》 |2013年第8期|1275-1289|共15页
  • 作者单位

    Empa Swiss Federal Laboratories for Materials Testing & Research, 8600 Duebendorf, Switzerland;

    Empa Swiss Federal Laboratories for Materials Testing & Research, 8600 Duebendorf, Switzerland,Institute for Building Materials (IfB), ETH Zurich, Zurich, Switzerland;

    Empa Swiss Federal Laboratories for Materials Testing & Research, 8600 Duebendorf, Switzerland,Department of Civil and Environmental Engineering, Road Engineering/Sealing Components, KTH Stockholm, Stockholm, Sweden;

    Empa Swiss Federal Laboratories for Materials Testing & Research, 8600 Duebendorf, Switzerland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Bitumen emulsion; Portland cement; Environmental relative humidity; Cement asphalt composite; Hydration;

    机译:沥青乳液;硅酸盐水泥;环境相对湿度;水泥沥青复合材料;补水;

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