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Coupled hydro-mechanical response of saturated asphalt pavement under moving traffic load

机译:交通荷载作用下饱和沥青路面的水力耦合响应

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摘要

Based on the Boit's theory, the governing equation was established to account for the response of moisture pavement. The analytical solutions were obtained through the expansion of Fourier series. Furthermore, the effects of parameters (i.e. hydraulic conductivity, traffic load velocity, drainage boundary and solid modulus) on dynamic response were investigated in terms of water-induced damage of pavement. Compared with the dry-elastic pavement, the negative normal stress in saturated asphalt pavement is concentrated beneath the traffic load, which may be a reason for a damage phenomenon in asphalt pavement. Hydraulic conductivity anisotropy plays a significant role in influencing the physical fields. Between vertical and horizontal hydraulic conductivity, the physical field almost depends on vertical hydraulic conductivity rather than horizontal hydraulic conductivity which just affects the horizontal pore-water velocity obviously. Moreover, the drained boundary evidently influences the seepage field of surface course with high permeability.
机译:根据博伊特理论,建立了控制方程,以解释湿气路面的响应。通过扩展傅立叶级数获得解析解。此外,根据水引起的路面破坏,研究了参数(即水力传导率,交通荷载速度,排水边界和固体模量)对动力响应的影响。与干弹性路面相比,饱和沥青路面的负法向应力集中在交通荷载以下,这可能是造成沥青路面破坏现象的原因。水力传导率各向异性在影响物理场中起着重要作用。在垂直和水平水力传导率之间,物理场几乎取决于垂直水力传导率,而不是水平水力传导率,而水力传导率仅明显影响水平孔隙水速度。而且,排水边界明显地影响了具有高渗透性的表层渗流场。

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  • 作者单位

    School of Civil Engineering and Architecture, Central South University, Changsha, Hunan 410075, P.R. China,Post-doctoral Research Center, Guizhou Transportation Planning Survey & Design Academe, Guizhou, Guiyang 550001, P.R. China;

    School of Civil Engineering and Architecture, Central South University, Changsha, Hunan 410075, P.R. China;

    Post-doctoral Research Center, Guizhou Transportation Planning Survey & Design Academe, Guizhou, Guiyang 550001, P.R. China;

    School of Civil Engineering and Architecture, Central South University, Changsha, Hunan 410075, P.R. China,Department of Civil and Environmental Engineering, Rutgers, The State University of New Jersey, Piscataway, NJ 08854, USA;

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  • 正文语种 eng
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  • 关键词

    pavement dynamic response; moving traffic load; water damage; pore-water pressure; hydraulic conductivity anisotropy;

    机译:路面动力响应移动交通负荷;水损害;孔隙水压力导水率各向异性;

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