Linear viscoelastic response of emulsified-asphalt cold recycled mixtures

IF 2.1 4区 材料科学 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
Atanu Behera, V. T. Thushara, J. Murali Krishnan
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Abstract

The current study investigates the linear viscoelastic response of emulsified-asphalt cold recycled mixtures (ECRM), incorporating reclaimed asphalt pavement (RAP), fresh aggregates, cement, water, and bituminous emulsion. Specifically, two types of ECRM are analyzed: a conventional mixture with 100% RAP (ECRM1) and a modified version with 75% RAP activated by heating (ECRM2). The research highlights the distinct mechanical response resulting from variations in production processes and the RAP content of the mixtures. The study examines the rate-dependent responses under various confinement conditions, temperatures, and frequencies through repeated haversine compression loading. Further, a novel approach to determine the reference temperature is proposed, and master curves are constructed using the generalized sigmoidal and Huet–Sayegh models. Even though ECRM1 and ECRM2 have different RAP content, production processes, and volumetric properties, the differences between the mixtures using the dynamic modulus and storage-modulus master curves are not substantial. However, the loss-modulus master curve distinctly captures the differences between the mixtures, with ECRM1 exhibiting a higher loss modulus due to its higher effective binder content. Moreover, the relaxation spectrum also captures the distinct response between the materials, mirroring the response seen in the loss modulus. It is also observed that confinement pressure significantly influences the dynamic modulus and storage modulus of ECRMs at low reduced frequencies. However, the influence of confinement pressure on the loss-modulus master curve and relaxation spectrum is negligible. This indicates that confinement pressure only influences the real part of the complex modulus, with no effect on the imaginary part.

Abstract Image

Abstract Image

乳化沥青冷再生混合物的线性粘弹性响应
本研究调查了乳化沥青冷再生混合料(ECRM)的线性粘弹性响应,其中包括再生沥青路面(RAP)、新鲜集料、水泥、水和沥青乳液。具体来说,对两种 ECRM 进行了分析:一种是含有 100% RAP 的传统混合物(ECRM1),另一种是通过加热活化 75% RAP 的改良型混合物(ECRM2)。研究强调了生产工艺和混合物中 RAP 含量的变化所产生的不同机械响应。研究通过反复的哈弗辛压缩加载,考察了在各种约束条件、温度和频率下与速率相关的响应。此外,还提出了一种确定参考温度的新方法,并使用广义西格玛模型和 Huet-Sayegh 模型构建了主曲线。尽管 ECRM1 和 ECRM2 的 RAP 含量、生产工艺和体积特性不同,但使用动态模量和储量模量主曲线计算的混合物之间的差异并不大。然而,损耗模量主曲线明显反映了混合物之间的差异,ECRM1 由于有效粘结剂含量较高,损耗模量较高。此外,弛豫谱也捕捉到了材料之间的明显反应,反映了损耗模量的反应。还可以观察到,在低频降低时,约束压力对 ECRM 的动态模量和存储模量有显著影响。然而,约束压力对损耗模量主曲线和弛豫谱的影响可以忽略不计。这表明约束压力只影响复模量的实部,而对虚部没有影响。
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来源期刊
Mechanics of Time-Dependent Materials
Mechanics of Time-Dependent Materials 工程技术-材料科学:表征与测试
CiteScore
4.90
自引率
8.00%
发文量
47
审稿时长
>12 weeks
期刊介绍: Mechanics of Time-Dependent Materials accepts contributions dealing with the time-dependent mechanical properties of solid polymers, metals, ceramics, concrete, wood, or their composites. It is recognized that certain materials can be in the melt state as function of temperature and/or pressure. Contributions concerned with fundamental issues relating to processing and melt-to-solid transition behaviour are welcome, as are contributions addressing time-dependent failure and fracture phenomena. Manuscripts addressing environmental issues will be considered if they relate to time-dependent mechanical properties. The journal promotes the transfer of knowledge between various disciplines that deal with the properties of time-dependent solid materials but approach these from different angles. Among these disciplines are: Mechanical Engineering, Aerospace Engineering, Chemical Engineering, Rheology, Materials Science, Polymer Physics, Design, and others.
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