Abstract

To study the dynamic response of saturated asphalt pavement under moving load and temperature load, 3-D finite element models for asphalt pavements with hydro-mechanical coupling and thermal-hydro-mechanical coupling were built based on the porous media theory and Biot theory. First, the asphalt pavement structure was considered as an ideal saturated fluid–solid biphasic porous medium. Following this, the spatial distribution and the change law of the pore-water pressure with time, the transverse stress, and the vertical displacement response of the asphalt pavement under different speeds, loading times, and temperatures were investigated. The simulation results show that both the curves of the effective stress and the pore-water pressure versus the external loads have similar patterns. The damage of the asphalt membrane is mainly caused by the cyclic effect of positive and negative pore-water pressure. Moreover, the peak value of pore-water pressure is affected by the loading rate and the loading time, and both have positive exponential effects on the pore-water pressure. In addition, the transverse stress of the upper layer pavement is deeply affected by the temperature load, which is more likely to cause as transverse crack in the pavement, resulting in the formation of temperature cracks on the road surface. The vertical stress at the middle point in the upper layer of the saturated asphalt pavement, under the action of the temperature load and the driving load, shows a single peak.

Highlights

  • There are many factors that cause the early damage of highway asphalt pavements, of which water damage is a main cause [1,2,3]

  • The saturated state of asphalt pavement structure is described by porous media theory, and the

  • In the context of these theories, the asphalt pavement structure is considered as an ideal saturated fluid–solid biphasic porous medium

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Summary

Introduction

There are many factors that cause the early damage of highway asphalt pavements, of which water damage is a main cause [1,2,3]. Due to the two effects, the adhesive properties of the asphalt pavement structure decreases, resulting in the peeling between the asphalt and the aggregate, and the detachment of asphalt membrane from the aggregate surface This leads to water damage of the asphalt pavement [4,5,6]. Studies on the dynamic response mechanism of permeable asphalt pavement under the combined effects of temperature, saturation, and load have not been carried out. These issues directly affect the hydraulic coupling mechanism and the dynamic response characteristics of the asphalt pavement. By analyzing the influence of various parameters, the water damage mechanism was revealed, which provides the theoretical basis and the technical guidance for the design of a permeable asphalt pavement

Basic Theoretical Equation
Dynamic Equation
Control Equation for Ideal Saturated Medium
Finite Element Modeling and Parameter Selection
Results
Pore-water
Influence
Transverse
Influence of Speed on Vertical Displacement of Structure
Pavement Temperature
Pavement Structure Parameters
Spatial Vertical Stress Distributions at Different Times
Spatial
Vertical
10. Spatial
Conclusions
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