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Anisotropic Characterization of Asphalt Mixtures in Compression

机译:压缩状态下沥青混合料的各向异性表征

摘要

Rutting is one of the major distresses in asphalt pavements and it increases road roughness and traps water, which leads to wet-weather accidents due to the loss of tire-pavement friction and hydroplaning. The fundamental mechanisms of rutting have not been well addressed because of the complexity of asphalt mixtures. A comprehensive characterization of the asphalt mixtures in compression was accomplished by mechanistically modeling the inherent anisotropy, viscoelasticity, viscoplasticity and viscofracture of the material.The inherent anisotropy due to preferentially oriented aggregates was characterized by a microstructural parameter (i.e., modified vector magnitudes) which could be rapidly and accurately measured by lateral surface scanning tests and physically related to anisotropic modulus ratio. The anisotropic viscoelasticity was represented by complex moduli and Poisson's ratios in separate orthogonal directions that were determined by an efficient testing protocol. Master curve models were proposed for the magnitude and phase angle of these complex variables. The viscoplasticity were intensively modeled by an anisotropic viscoplastic model which incorporated 1) modified effective stresses to account for the inherent and stress-induced anisotropy; 2) a new model to provide a smooth and convex yield surface and address the material cohesion and internal friction; 3) a non-associated flow rule to consider the volumetric dilation; and 4) a temperature and strain rate dependent strain hardening function. The viscofracture resulting from the crack growth in compression led to the stress-induced anisotropy and was characterized by anisotropic damage densities, the evolution of which was modeled by the anisotropic pseudo J-integral Paris' laws.Results indicated that the undamaged asphalt mixtures were inherently anisotropic and had vertical to horizontal modulus ratios from 1.2 to 2.0 corresponding to the modified vector magnitudes from 0.2 and 0.5. The rutting would be underestimated without including the inherent anisotropy in the constitutive modeling. Viscoelastic and viscoplastic deformation developed simultaneously while the viscofracture deformation occurred only during the tertiary flow, which was signaled by the increase of phase angle. Axial and radial strain decomposition methods were proposed to efficiently separate the viscoplasticity and viscofracture from the viscoelasticity. Rutting was accelerated by the occurrence of cracks in tertiary flow. The asphalt mixture had a brittle (splitting cracks) or ductile (diagonal cracks) fracture when the air void content was 4% and 7%, respecitvely. The testing protocol that produced the material properties is efficient and can be completed in one day with simple and affordable testing equipment. The developed constitutive models can be effectively implemented for the prediction of the rutting in asphalt pavements under varieties of traffic, structural, and environmental conditions.
机译:车辙是沥青路面的主要困扰之一,它增加了道路的不平整度并积水,由于轮胎与路面的摩擦力和滑水损失,导致了潮湿天气事故。由于沥青混合物的复杂性,车辙的基本机理尚未得到很好的解决。通过机械建模材料的固有各向异性,粘弹性,粘塑性和黏裂性来完成对压缩沥青混合料的全面表征。优先取向的骨料所产生的固有各向异性可以通过微观结构参数(即修正的矢量量级)来表征。通过侧面扫描测试可以快速而准确地进行测量,并且在物理上与各向异性模量比有关。各向异性的粘弹性由有效测试方案确定的正交方向上的复数模量和泊松比表示。针对这些复杂变量的大小和相角提出了主曲线模型。通过各向异性粘塑性模型对粘塑性进行了深入建模,该模型并入了以下内容:1)修正了有效应力,以解释固有的和应力诱发的各向异性; 2)提供光滑和凸形屈服表面并解决材料内聚力和内部摩擦的新模型; 3)考虑体积膨胀的非关联流规则;和4)温度和应变率相关的应变硬化功能。裂纹在压缩过程中的扩展引起的黏性断裂导致了应力诱导的各向异性,并具有各向异性的损伤密度,其演化用各向异性伪J-积分巴黎定律模拟。结果表明,未破坏的沥青混合料是固有的各向异性,垂直和水平模量比为1.2到2.0,对应的修正矢量幅度为0.2和0.5。在本构模型中不包括固有各向异性的情况下,车辙将被低估。粘弹性变形和粘塑性变形同时发展,而粘裂变形仅在三次流动中发生,这是由相角的增加所表示的。提出了轴向和径向应变分解方法,以有效地将粘塑性和粘裂性与粘弹性区分开。第三流中裂纹的出现加速了车辙。当气隙含量分别为4%和7%时,沥青混合物具有脆性(裂开裂纹)或延性(对角裂纹)断裂。产生材料特性的测试协议是有效的,并且可以使用简单且负担得起的测试设备在一天内完成。所开发的本构模型可以有效地用于预测各种交通,结构和环境条件下沥青路面的车辙。

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    Zhang Yuqing 1983-;

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  • 年度 2013
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