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Evaporation-induced moisture damage of asphalt mixtures: Microscale model and laboratory validation

机译:蒸发引起的沥青混合料的水分破坏:微观模型和实验室验证

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Moisture damage is a major source of pavement distress and may cause premature failure. In this study, moisture damage due to evaporation was investigated. A microscale finite-element model coupled with comprehensive laboratory testing was developed to simulate and validate the effect of evaporation induced moisture damage on asphalt mixture load bearing characteristics on indirect tensile (IDT) strength test. In the proposed model, cohesive zone method (CZM) was used to address crack initiation and development at the aggregate-mastic interface. Quadratic nominal strain and BK exponential damage progress curve were considered for failure due to interaction of shear and normal forces. Fick's first law was incorporated into the model to simulate moisture diffusion in asphalt mixtures after hours of curing with saturated cold evaporation. Several tests were carried out to derive mechanical and moisture related input parameters for the model. These tests included an static creep test on mastic, single-edge notch beam (SENB) on asphalt mixtures, and an evaporation diffusion coefficient test on aggregates and mastic. Appropriate moisture-dependent properties were assigned to mastic and aggregate-mastic interface. For laboratory validation, nine samples were fabricated and IDT strength test was performed on them. Samples were cured for 192, 456, and 672 h and tested at loading rates of 0.05, 0.075, and 0.1 mm/s. Comparison of load-displacement plots obtained from laboratory tests and model results showed a descent match in terms of peak load and plot shape. Analysis of factors influencing IDT strength revealed that aggregate-mastic adhesion had a higher contribution to strength of samples compared to mastic cohesion. (C) 2018 Elsevier Ltd. All rights reserved.
机译:湿气损坏是路面困扰的主要来源,并可能导致过早损坏。在这项研究中,研究了由于蒸发造成的湿气损害。建立了微尺度有限元模型,并进行了全面的实验室测试,以模拟和验证蒸发引起的水分损伤对间接拉伸(IDT)强度测试中沥青混合料承载特性的影响。在提出的模型中,内聚区方法(CZM)用于解决聚集体-胶体界面处的裂纹萌生和发展。考虑了由于剪切力和法向力的相互作用而导致的破坏的二次标称应变和BK指数破坏进度曲线。将Fick的第一定律纳入模型,以模拟经过饱和冷蒸发固化数小时后沥青混合物中的水分扩散。进行了几次测试以得出模型的机械和湿度相关输入参数。这些测试包括在胶泥上的静态蠕变测试,在沥青混合物上的单边缘缺口梁(SENB),以及在骨料和胶泥上的蒸发扩散系数测试。适当的依赖于水分的性质被分配给乳香和骨料-乳胶界面。为了进行实验室验证,制造了九个样品,并对它们进行了IDT强度测试。将样品固化192、456和672小时,并以0.05、0.075和0.1 mm / s的加载速率进行测试。从实验室测试和模型结果获得的荷载-位移曲线图的比较显示,在峰值荷载和曲线形状方面,下降趋势相匹配。对影响IDT强度的因素进行分析后发现,与乳胶内聚力相比,骨料-乳胶粘附对样品强度的贡献更大。 (C)2018 Elsevier Ltd.保留所有权利。

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