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Coupled thermo-hydro-mechanical response of saturated asphalt pavement

机译:饱和沥青路面的耦合热水机械响应

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This study aims to characterise the coupled thermo-hydro-mechanical properties of the saturated asphalt pavement under the vehicle load, the thermal deformation and thermoviscoelasticity of the asphalt layer, and the pore water pressure in the voids of the asphalt layer. A thermo-hydro-mechanical model (THMM) was proposed by coupling the governing equations of triple physics of thermal, hydraulic, and mechanical fields. Based on the identification of circular dependence of the above triple physics, weak forms of the coupled governing equations were incorporated into a weak form equation-based finite element software package. The effectiveness and accuracy of the THMM were validated from the perspective of mechanical performance of the asphalt mixture, temperature profile of the asphalt pavement, and hydro-mechanical performance of the asphalt pavement, respectively. Results show that the thermal deformation and thermoviscoelasticity are both vital for performance prediction of the asphalt pavement; the thermal contraction and thermal tensile stress appear in the cool-down asphalt pavement (pavement temperature decreases), and the thermal expansion and thermal compressive stress emerge in the heat-up asphalt pavement (pavement temperature increases). The pore water flows outside of the pavement under the vehicle load and flows back to the pavement when the vehicle load travels far away. Compared with the dry asphalt pavement, the pore water can decrease the effective stress induced by the vehicle load, but it will increase the residual stress when the vehicle load travels away. For the selected undamaged asphalt pavement, the smaller relaxation modulus comes from higher temperature and produces higher hydraulic pressure in the saturated asphalt layer, and vice versa. The maximum differences between the vertical strains under the vehicle load in the saturated and dry asphalt pavements lies in high temperature period of one day, and there are almost no differences when the vehicle loads travels far away. The pore water in the saturated asphalt pavement contributes well to the temperature distribution and generate temperature gradient in the transverse direction of the asphalt pavement. (C) 2021 Elsevier Ltd. All rights reserved.
机译:本研究旨在表征在沥青层的载体负荷,热变形和热源性下的饱和沥青路面的耦合热水机械性能,以及沥青层空隙中的孔隙水压力。通过耦合热,液压和机械领域三重物理的控制方程提出了热水机械模型(THMM)。基于上述三重物理学的循环依赖性的识别,将耦合控制方程的弱形式纳入弱形式的基于方程式的有限元软件包。从沥青混合料,沥青路面温度曲线的力学性能的角度验证了THMM的有效性和准确性,以及沥青路面的水电性能。结果表明,热变形和热扫描性对沥青路面性能预测至关重要;热收缩和热拉伸应力出现在冷却沥青路面(路面温度下降)中,热膨胀和热压缩应力出现在加热沥青路面(路面温度升高)中出现。孔隙水在车辆负载下的路面之外流动,当车辆负荷远离时,返回路面。与干沥青路面相比,孔隙水可以降低车辆负荷引起的有效应力,但是当车辆负荷行驶时,它将增加残余应力。对于所选择的未损坏的沥青路面,较小的弛豫模量来自较高的温度,并在饱和沥青层中产生更高的液压,反之亦然。饱和和干沥青路面中车辆负载下的垂直菌株之间的最大差异位于一天的高温期,并且当车辆负荷远离时,几乎没有差异。饱和沥青路面中的孔水有助于温度分布,并在沥青路面的横向方向上产生温度梯度。 (c)2021 elestvier有限公司保留所有权利。

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