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首页> 外文期刊>The international journal of pavement engineering >Low-temperature performance prediction of asphalt mixtures used for LLP—new approach based on fundamental test methods and numerical modeling
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Low-temperature performance prediction of asphalt mixtures used for LLP—new approach based on fundamental test methods and numerical modeling

机译:LLP用沥青混合料的低温性能预测-基于基本试验方法和数值模拟的新方法

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摘要

A major mode of deterioration in fully-flexible long-life pavements (LLP) is surface-initiated top-down cracking. If surface maintenance is suspended, surface-initiated cracks may conflict the long-life concept, as they will propagate into the structural layers and structural deterioration will start. The risk of surface-initiated top-down cracking is influenced by a number of interacting factors. Critical stresses may result, e.g. from the 3D loading situation at or near the pavement surface due to contact stresses between the tire and the pavement surface, from a sudden change in the asphalt layer temperature gradient, from traffic loading at low-temperatures and from material related factors like asphalt ageing and particle segregation due to stripping of the binder. Cracks may also be initiated by early construction micro-cracks induced by the asphalt roller. Depending on the respective mechanism of initiation, surface cracks are observed to be orientated in both directions, transversally to the road axis and longitudinally and longitudinal cracks are found inside as well as outside the wheel-path. In this study, the combined effect of tensile stresses resulting from both traffic and thermal loading in a typical fully-flexible LLP structure is investigated. Supposed that the risk of surface-initiated cracking can be minimized by using an appropriate asphalt material, the main objective of this paper is to find important missing links between the characterization of fundamental low-temperature properties of an asphalt mixture, on the one hand, and its in-service behaviour with special regard to the risk of surface-initiated top-down cracking at low-temperatures, on the other hand. Based on fundamental test methods, material modeling and numerical simulation, an overall concept is presented that will enable a better prediction of the low-temperature performance and a better risk evaluation of surface-initiated cracking at low-temperatures. First promising results are given for a typical fully-flexible LLP structure that is exposed to prescribed temperature and loading scenarios. Realistic critical stress distributions at the road surface in consequence of combined thermal and traffic loading are found that allow assessment of the risk of longitudinal surface-initiated top-down cracking at low-temperatures.
机译:全柔性长寿命路面(LLP)劣化的主要方式是表面引发的自上而下的开裂。如果中止表面维护,则表面引发的裂纹可能会与长寿命概念相冲突,因为它们会传播到结构层中,并且结构开始恶化。表面引发的自上而下开裂的风险受到许多相互作用因素的影响。可能会产生严重压力,例如由于轮胎和路面之间的接触应力而在路面表面处或附近的3D负载情况,沥青层温度梯度的突然变化,低温下的交通负载以及与材料相关的因素(例如沥青老化和由于粘合剂的剥离,颗粒分离。裂缝也可能由沥青压路机引起的早期施工微裂纹引发。取决于相应的引发机制,观察到表面裂纹在两个方向上定向,横向于道路轴线,并且在车轮路径的内部和外部都发现了纵向和纵向裂纹。在这项研究中,研究了典型的完全柔性LLP结构中交通和热负荷引起的拉应力的综合效应。假设通过使用适当的沥青材料可以将表面引发开裂的风险降到最低,则本文的主要目的是,一方面发现沥青混合物的基本低温特性表征之间的重要缺失环节,另一方面,它的使用行为特别考虑了低温下表面引发的自上而下开裂的风险。基于基本的测试方法,材料建模和数值模拟,提出了一个总体概念,可以更好地预测低温性能,并可以更好地评估低温下表面引发的开裂。对于典型的完全柔性的LLP结构,该结构暴露于规定的温度和负载情况下,将获得第一个有希望的结果。发现由于热负荷和交通负荷相结合而在路面产生的实际临界应力分布,可以评估低温下纵向表面引发的自上而下开裂的风险。

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