腐蚀-地震耦合作用下格构钢桥墩力学行为与强度评估方法

MECHANICAL BEHAVIOR AND STRENGTH EVALUATION METHOD OF LATTICE STEEL BRIDGE PIERS CONSIDERING EROSION AND EARTHQUAKE EFFECT

  • 摘要: 由于自重轻和形态规则,格构式钢桥墩具有良好的抗震性能,广泛用于山区高墩桥梁工程中。服役过程中钢桥墩不可避免会发生腐蚀等损伤,如何评估地震作用下端部腐蚀的格构式钢桥墩的滞回性能、破坏模式和极限强度等是工程中极为关切的问题。该文建立了考虑局部屈曲和端部腐蚀的多尺度有限元模型并验证其有效性,探究了腐蚀-地震耦合作用下钢桥墩的破坏机理、失效模式和极限强度的变化规律;在此基础上,建立了考虑腐蚀损伤影响的半理论半经验的格构式钢桥墩极限强度的计算方法。研究结果表明:端部腐蚀损伤导致格构式钢桥墩的应力集中加剧,使得钢管的局部屈曲向腐蚀区域集中。随着腐蚀参数的增大,桥墩的极限强度降低,降幅可达10%以上。该文建立的极限强度的计算方法具有良好预测精度,可为格构式钢桥墩生命周期抗震设计和评估提供参考。

     

    Abstract: Given their lightweight and regular shapes, lattice steel bridge piers exhibit excellent aseismic performance, making them widely used in high pier bridge projects in mountainous regions. During their service lifetimes, steel bridge piers inevitably suffer from damages such as corrosion. Evaluating the hysteretic performance, failure modes, and ultimate strength of lattice steel bridge piers with end corrosion under seismic action is thusly a critical engineering concern. This study first establishes a multi-scale finite element model considering local buckling and end corrosion, and validates its effectiveness. The study explores the failure mechanisms, failure modes, and changes in the ultimate strength of steel bridge piers under the coupled action of corrosion and earthquakes. On this basis, developed is a semi-theoretical semi-empirical calculation method for the ultimate strength of lattice steel bridge piers considering the impact of corrosion damage. The results indicate that end corrosion damage intensifies stress concentration in lattice steel bridge piers, causing local buckling of steel tubes to concentrate in the corroded areas. As corrosion parameters increase, the ultimate strength of the piers decreases, with reductions exceeding 10%. The calculation method for the ultimate strength established demonstrates good predictive accuracy and can provide a reference for the aseismic design and evaluation of lattice steel bridge piers throughout their lifecycles.

     

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