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Development of cold-mix high-toughness resin and experimental research into its performance in a steel deck pavement

机译:冷拌高韧性树脂的开发及其在钢甲板路面中性能的实验研究

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摘要

Fatigue cracking is a typical defect in steel deck pavements. To reduce, or even eliminate, fatigue cracking in orthotropic steel deck pavements, a new-generation, cold-mix, high-toughness resin (CHR) for steel deck pavements was prepared by introducing a flexible chain into the molecular structure of cured epoxy resin based on the principle of action of a simultaneous interpenetrating polymer network (IPN), Meanwhile, the strength and durability of the CHR were studied experimentally. The results show that with increased dosage of active toughening agent, the microstructure of CHR transitioned from a sea-island structure to an interpenetrating network structure. In addition, the transparency of CHR gradually increased and the tensile strength gradually decreased while the elongation at break gradually increased. The reaction orders of Z15-G1 and Z15-G2 CHRs were 0.918 and 0.921 and their apparent activation energies were 47.60 kJ/mol and 50.74 kJ/mol, respectively. The basic pavement performances of the Z15-G1 and Z15-G2 CHR mixtures both satisfied the technical index requirements of a steel deck pavement. Moreover, four-point bending fatigue test results show that the fatigue life of the Z15-G1 CHR mixture was much longer than that of an epoxy asphalt mixture. (C) 2019 Published by Elsevier Ltd.
机译:疲劳裂纹是钢甲板路面的典型缺陷。为了减少或什至消除正交异性钢甲板路面的疲劳裂纹,通过在固化环氧树脂的分子结构中引入柔性链来制备用于钢甲板路面的新一代冷混合高韧性树脂(CHR)。基于同时互穿聚合物网络(IPN)的作用原理,同时对CHR的强度和耐久性进行了实验研究。结果表明,随着活性增韧剂用量的增加,CHR的微观结构从海岛结构转变为互穿网络结构。此外,CHR的透明度逐渐增加,抗张强度逐渐降低,而断裂伸长率则逐渐增加。 Z15-G1和Z15-G2 CHR的反应级分别为0.918和0.921,它们的表观活化能分别为47.60 kJ / mol和50.74 kJ / mol。 Z15-G1和Z15-G2 CHR混合物的基本路面性能均满足钢甲板路面的技术指标要求。此外,四点弯曲疲劳试验结果表明,Z15-G1 CHR混合物的疲劳寿命比环氧沥青混合物的疲劳寿命长得多。 (C)2019由Elsevier Ltd.发布

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