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Response of full-height frame integral abutments subjected to seismic motions

机译:全高框架整体式桥台在地震作用下的响应

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As a new type of bridge, integral bridges can significantly reduce long-term maintenance costs, and their application is encouraged in many countries. However, there is great uncertainty regarding the dynamic performance of full-height integral abutments during earthquakes. This paper presents the findings from a dynamic numerical simulation on a typical full-height frame integral bridge abutment. The influences of peak acceleration, bridge deck length, and abutment height are investigated. The effect of a mitigation method, i.e., installation of a compressible layer behind the abutment, is also discussed. The results highlight the effect of the rigid connection between the deck and the integral abutment, which will transfer the very large inertial force of the bridge deck to the abutment top and cause strong dynamic interaction between the abutment and the backfill. The traditional Mononobe-Okabe method adopted in current bridge abutment design codes cannot provide a reasonable prediction as to the dynamic earth pressure behind integral abutments, leading to unsafe designs. Although a compressible layer can reduce the dynamic earth pressure, the deformation and bending moments of the abutment will increase as a result of the much lower restraint provided by the compressible layer during earthquakes.
机译:一体式桥梁作为一种新型桥梁,可以大大降低长期维护成本,并在许多国家中鼓励其应用。然而,地震期间全高整体式基台的动力性能存在很大的不确定性。本文介绍了典型的全高框架整体式桥台的动态数值模拟结果。研究了峰值加速度,桥面长度和桥台高度的影响。还讨论了缓解方法的效果,即在基台后面安装可压缩层。结果突出了桥面板和整体桥台之间刚性连接的效果,它将刚性桥面板的很大惯性力传递到桥台顶部,并导致桥台和回填之间的强烈动力相互作用。当前桥梁桥台设计规范中采用的传统Mononobe-Okabe方法无法对整体桥台背后的动态土压力提供合理的预测,从而导致设计不安全。尽管可压缩层可以降低动态土压力,但是由于地震期间可压缩层提供的约束要低得多,因此桥基的变形和弯矩将增加。

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