Literature DB >> 35057134

Meso- and Macro-Mechanical Analysis of the Frost-Heaving Effect of Void Water on Asphalt Pavement.

Jiancun Fu1,2, Aiqin Shen1.   

Abstract

In cold regions, many types of structural damages are caused by the frost heaving of asphalt pavements. Hence, it is important to quantitatively determine the frost-heaving effect of asphalt pavement using a mechanical method to control frost-heaving damage. In this study, first, the internal voids of the asphalt mixture were regarded as a single void, and the water phase transition generating the freezing water in the voids was simulated using a simplified hollow sphere model to create a uniform internal pressure. Second, the prediction equation of the equivalent linear expansion coefficient was proposed by taking the phase transition of water in the saturated asphalt mixture voids into account. A step function was used during the phase transition of water to determine the sudden change in the equivalent linear expansion coefficient, heat capacity, density, and thermal conductivity. Finally, the typical cooling conditions were simulated with the water phase transition and the nonwater phase transition. The experimental results showed that the proposed model could accurately simulate the effect of frost heaving. Higher stress and strain were generated on the surface and in the interior of the pavement, and the positions of maximum stress and strain occurred on the pavement surface under the frost-heaving conditions. The compressive strength of the asphalt mixture in a uniaxial compression test is about 4.5-6 MPa with a single freeze-thaw cycle. Furthermore, when frost heaving occurs on the asphalt pavement between 5.8 and 6.5 MPa, the numerical simulation method can be used to calculate the internal stress of the structure, which found that the compressive stress under the frost-heaving condition was the same magnitude as the compressive strength under the freeze-thaw testing condition.

Entities:  

Keywords:  asphalt mixture; frost-heaving effect; numerical simulation; thermal-mechanical coupling; water phase transition

Year:  2022        PMID: 35057134      PMCID: PMC8777904          DOI: 10.3390/ma15020414

Source DB:  PubMed          Journal:  Materials (Basel)        ISSN: 1996-1944            Impact factor:   3.623


  3 in total

1.  Inhibition of Human Tyrosinase Requires Molecular Motifs Distinctively Different from Mushroom Tyrosinase.

Authors:  Tobias Mann; Wolfram Gerwat; Jan Batzer; Kerstin Eggers; Cathrin Scherner; Horst Wenck; Franz Stäb; Vincent J Hearing; Klaus-Heinrich Röhm; Ludger Kolbe
Journal:  J Invest Dermatol       Date:  2018-02-07       Impact factor: 8.551

2.  A Micro-Scale Investigation on the Behaviors of Asphalt Mixtures under Freeze-Thaw Cycles Using Entropy Theory and a Computerized Tomography Scanning Technique.

Authors:  Huining Xu; Hengzhen Li; Yiqiu Tan; Linbing Wang; Yue Hou
Journal:  Entropy (Basel)       Date:  2018-01-23       Impact factor: 2.524

3.  Low-Temperature Performance and Damage Constitutive Model of Eco-Friendly Basalt Fiber⁻Diatomite-Modified Asphalt Mixture under Freeze⁻Thaw Cycles.

Authors:  Yongchun Cheng; Di Yu; Guojin Tan; Chunfeng Zhu
Journal:  Materials (Basel)       Date:  2018-10-31       Impact factor: 3.623

  3 in total

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