结构工程
有限元法
刚度
使用寿命
覆盖
甲板
压力(语言学)
桥面
耐久性
材料科学
变形(气象学)
沥青
骨料(复合)
环氧树脂
复合数
桥(图论)
极限抗拉强度
工程类
联轴节(管道)
悬挂(拓扑)
岩土工程
结构体系
剪应力
应力集中
结构荷载
复合材料
沥青混凝土
作者
Jiping Wang,Jiaqi Tang,Tianshu Huang,Zhenqiang Han,Zhiyou Zeng,Haitao Ge
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2026-01-23
卷期号:19 (3): 448-448
被引量:2
摘要
Steel bridge deck pavements (SBDPs) are susceptible to complex mechanical and service environmental conditions, yet current design methods often struggle to simultaneously capture global bridge system behavior and local pavement responses. To address this issue, this study develops a multi-scale finite element modeling framework that integrates a full-bridge model, a refined girder-segment model, and a detailed pavement submodel. The framework is applied to an extra-long suspension bridge to evaluate the mechanical responses of five typical pavement structural configurations-including double-layer SMA, double-layer Epoxy Asphalt (EA), EA-SMA combinations, and a composite scheme with a thin epoxy resin aggregate overlay. By coupling global deformations from a full-bridge model to the local pavement submodel, the proposed method enables a consistent assessment of both bridge-level effects and pavement-level stress concentrations. The analysis reveals that pavement structures significantly alter the stress and strain distributions within the deck system. The results indicate that while the composite configuration with a thin overlay effectively reduces shear stress at the pavement-deck interface, it results in excessive tensile strain, posing a high risk of fatigue cracking. Conversely, the double-layer EA configuration exhibits the lowest fatigue-related strain, demonstrating superior deformation coordination, while the optimized EA-SMA combination offers a robust balance between fatigue control and interfacial stress distribution. These findings validate the effectiveness of the multi-scale approach for SBDP analysis and highlight that rational structural configuration selection-specifically balancing layer stiffness and thickness-is critical for enhancing the durability and long-term performance of steel bridge deck pavements.
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