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Performance of a dry-method-epoxy modifier and a modified epoxy-asphalt mixture

机译:干法 - 环氧改性剂的性能和改性环氧 - 沥青混合物

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摘要

Conventional epoxy asphalt and its mixtures have a complex application procedure that leads to poor stability, easy segregation, and strict on-the-spot preparation requirements and applications. To solve these issues, the performance of a mixture of a customized dry-method-epoxy modifier and its asphalt mixture was evaluated. Functional groups before and after curing were analyzed using Fourier transform infrared spectrometry; the curing behavior was analyzed by non-isothermal differential scanning calorimetry tests; an optical microscope was used to observe the dispersibility of the dry-method-epoxy modifier in the asphalt, determine the optimal mixing ratio of the dry-method-epoxy modifier and the asphalt through the dispersibility, and observe the curing state. The relationship between the factors influencing the construction and road performance of dry-method-epoxy-asphalt mixture was evaluated using an orthogonal test and the Gray situation-decision method. The performance of the mixture under optimized conditions was then examined, and the results indicate that our modifier was exposed to a completed reaction at high temperatures. The curing heat decreased with increase in heating rate, resulting in a reduced reaction degree. The calculations demonstrated that the curing of dry-method-epoxy modifier is an approximately first-order reaction, although the reaction exotherm is concentrated and its tendency is high. Moreover, orthogonal tests were used to formulate 16 test plans for five factors and four levels of dry-method-epoxy asphalt mixture. The optimized conditions determined through the orthogonal test and the Gray situation-decision method were gradation = EA10, oil-stone ratio = 4.5, curing temperature = 150 degrees C, curing time = 4 h, and retention time = 30 min. Considering the realistic factors, an optimized scheme was determined and applied to assess the road performance of dry-methodepoxy-asphalt mixture. Based on the test, the Marshall stability was up to 65.28 kN, the dynamic stabilities at 60 degrees C and 70 degrees C were 43,200 and 27,391 times mm(-1), respectively, the freeze-thaw-splitting-strength ratio was 109%, the residual water-stability ratio was 96.2%, and the low temperature bending maximum flexural-tension strain was 3562 mu epsilon. This study confirmed the performance of dry-method-epoxy modifier and its mixtures with asphalt, thus providing theoretical guidance for practical applications. (C) 2020 Elsevier Ltd. All rights reserved.
机译:常规的环氧沥青及其混合物具有复杂的施用程序,导致稳定性差,易于隔离,以及严格的现场制备要求和应用。为了解决这些问题,评价定制的干法 - 环氧改性剂及其沥青混合物的混合物的性能。使用傅里叶变换红外光谱法分析固化前后的官能团;通过非等温差分扫描量热试验分析固化行为;使用光学显微镜观察沥青中干法 - 环氧改性剂的分散性,确定干法 - 环氧改性剂和沥青通过分散性的最佳混合比,并观察固化状态。利用正交试验评估影响干法 - 环氧 - 沥青混合料的结构和道路性能的因素之间的关系。然后检查在优化条件下的混合物的性能,结果表明,我们的调节剂在高温下暴露于完整的反应。通过增加加热速率,固化热量降低,导致反应程度降低。计算证明,干法环氧改性剂的固化是近似一阶反应,但反应放热浓缩,其趋势高。此外,正交试验用于制备16个因素的16个测试计划和四种水平的干法 - 环氧沥青混合物。通过正交试验和灰色情况决策方法确定的优化条件是渐变= EA10,油石比= 4.5,固化温度= 150℃,固化时间= 4小时,保留时间= 30分钟。考虑到现实的因素,确定并应用了优化方案,以评估干 - 方法 - 沥青混合料的道路性能。基于测试,马歇尔稳定性高达65.28kN,60摄氏度和70℃的动态稳定性分别为43,200和27,391次mm(-1),冷冻解冻分裂强度比为109% ,残留的水稳定性比例为96.2%,低温弯曲最大挠曲菌株为3562μmεε。本研究证实了干法 - 环氧改性剂及其与沥青混合物的性能,从而为实际应用提供了理论指导。 (c)2020 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Construction and Building Materials》 |2021年第1期|120229.1-120229.15|共15页
  • 作者单位

    Chongqing Jiaotong Univ Sch Civil Engn Chongqing 400074 Peoples R China|Zhonglu Jiaojian Beijing Engn Mat Technol Co Ltd Beijing 100088 Peoples R China;

    Beijing Zhonglu Gaoke Highway Technol Co Ltd 8 Rd Xitucheng Beijing 100088 Peoples R China;

    Zhonglu Jiaojian Beijing Engn Mat Technol Co Ltd Beijing 100088 Peoples R China;

    Zhonglu Jiaojian Beijing Engn Mat Technol Co Ltd Beijing 100088 Peoples R China;

  • 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

    Dry-method-epoxy modifier; Mixture; Gray situation-decision method; Performance;

    机译:干法 - 环氧改性剂;混合物;灰色情况决策方法;表现;

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