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Dynamic response of the 3D pavement-transversely isotropic poroelastic ground system to a rectangular moving load

机译:3D路面横观各向同性多孔弹性地面系统对矩形移动荷载的动力响应

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摘要

A semi-analytical approach is applied to investigate three-dimensional (3D) vibration in a coupled pavement and ground system subjected to a rectangular moving load. The pavement is simplified as an infinitely long orthogonal anisotropic elastic plate, and the ground materials are assumed to be multi-layered and transversely isotropic soils obeying the conditions of Biot’s dynamic poroelastic theory. The governing equations of the system are solved using the double Fourier transform, and the fast Fourier transform is used to obtain the dynamic responses in the time domain. The results show that the dynamic responses are significantly affected by the load velocity and peak or dip at the critical velocity. The variation in the dynamic response with depth as calculated by the transversely isotropic model is similar to that calculated with an isotropic model, but is significantly influenced by modulus anisotropy and soil layering. If EH< Evor Gv< C66, the subgrade design based on dynamic deformation control method will be unsafe when subjected to high load velocity. Instead, this calculation model for a subgrade is more appropriate for practical applications because of its incorporation of transverse isotropy.
机译:应用半分析方法来研究在矩形移动荷载作用下的人行道和地面耦合系统中的三维(3D)振动。路面被简化为无限长的正交各向异性弹性板,并且地面材料被认为是遵循Biot动力学多孔弹性理论条件的多层且横向各向同性的土壤。使用双重傅立叶变换求解系统的控制方程,并使用快速傅立叶变换获得时域的动态响应。结果表明,动态响应受负载速度和临界速度下的峰值或峰值显着影响。横向各向同性模型计算的动态响应随深度的变化与各向同性模型计算的相似,但受模量各向异性和土壤分层的影响很大。如果EH

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