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Analysis of viscoelastic response and creep deformation mechanism of asphalt mixture

机译:沥青混合料的粘弹性响应及蠕变变形机理分析

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摘要

Asphalt mixture is a typical viscoelastic material. Its mechanical response and deformation behavior depend on the role of time, temperature conditions and stress levels. Three kinds of asphalt mixture (i.e. AC-13, AC-16, AC-20) were used for the static creep test in different temperature conditions and stress levels. According to the creep curve, The Burgers viscoelastic parameters including E-1, eta(1,) E-2, eta(2) and the steady-state creep rate K were obtained. The effects of test temperature, stress level and aggregate gradation on the viscoelastic parameters of asphalt mixture were analyzed. Based on the relationship between the steady-state creep rate and the experimental temperature & load stress, the stress index and creep activation energy of asphalt mixture were proposed. By analyzing the relationship between the creep activation energy and the rutting depth, the creep mechanism of the asphalt mixture was discussed. The results show that with the increase of temperature, the four parameters of E-1, eta(1), E-2 and rig of the three kinds of asphalt mixtures generally decrease. But at different temperatures, the viscoelastic parameters of these three kinds of mixtures are not the same. The stress level has a significant effect on the viscoelastic properties of the asphalt mixture. The four viscoelastic parameters have the largest differences when the stress level is at the intermediate load level of 0.5 MPa, but the responses of the different gradation asphalt mixture to the stress level are different. With the increase of temperature and load stress, the steady-state creep rate increases gradually, but the stress indexes of these three kinds of asphalt mixtures stress index are not different. All of them are less than 3, and belong to the diffusion creep under the control of aggregate interface dislocation mechanism. The asphalt mixture that has larger creep activation energy has better stability under high temperature. AC-16 mixture has the highest creep activation energy. Nominal particle size is not a decisive factor for the performance in high temperature. (C) 2018 Elsevier Ltd. All rights reserved.
机译:沥青混合物是一种典型的粘弹性材料。它的机械响应和变形行为取决于时间,温度条件和应力水平的作用。三种沥青混合料(即AC-13,AC-16,AC-20)用于在不同温度条件和应力水平下的静态蠕变测试。根据蠕变曲线,获得了包括E-1,eta(1),E-2,eta(2)和稳态蠕变速率K在内的Burgers粘弹性参数。分析了试验温度,应力水平和骨料级配对沥青混合料粘弹性参数的影响。根据稳态蠕变速率与实验温度和载荷应力之间的关系,提出了沥青混合料的应力指数和蠕变活化能。通过分析蠕变活化能与车辙深度之间的关系,探讨了沥青混合料的蠕变机理。结果表明,随着温度的升高,三种沥青混合料的E-1,eta(1),E-2和rig四个参数普遍降低。但是在不同温度下,这三种混合物的粘弹性参数并不相同。应力水平对沥青混合物的粘弹性具有显着影响。当应力水平处于中间载荷水平0.5 MPa时,四个粘弹性参数具有最大的差异,但是不同等级的沥青混合料对应力水平的响应却不同。随着温度和载荷应力的增加,稳态蠕变速率逐渐增大,但是这三种沥青混合料的应力指标没有差异。它们均小于3,属于聚集界面错位机制控制下的扩散蠕变。具有较大蠕变活化能的沥青混合物在高温下具有较好的稳定性。 AC-16混合物具有最高的蠕变活化能。标称粒径不是高温下性能的决定性因素。 (C)2018 Elsevier Ltd.保留所有权利。

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