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A Review: Study of Integral Abutment Bridge with Consideration of Soil-Structure Interaction

机译:综述:考虑土壤结构相互作用的整体基台桥研究

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Bridges are one of the most critical parts of transportation networks that may suffer damages against earthquakes. Also, seismic responses of most bridges are significantly influenced by soil-structure interaction effects. Taking out expansion joints in the bridges may cause many difficulties in design and analysis due to the complexity of soil-structure interaction and nonlinear behavior. The secondary loads on an IAB include seismic load, temperature variation, creep, shrinkage, backfill pressure on back wall and abutment, all of which cause superstructure length and stress variations in girder changes. The purpose of this study is to recognize the most effective parameters of analysis IABs. Findings show that the backfill material behind the IABs has a significant effect on the performance of IABs. Using a compressible material behind the abutments would enhance the in-service performance of IABs. Finally, behaviour of abutment may be greatly affected by thermal load and soil pressure. Thermal expansion coefficient significantly influences girder axial force, girder bending moment, and pile head/abutment displacement.
机译:桥梁是交通网络最关键的部分之一,可能遭受遭受抗震灾害的损害。此外,大多数桥的地震反应受土壤结构相互作用效应的显着影响。由于土壤结构相互作用和非线性行为的复杂性,在桥梁中取出膨胀接头可能导致设计和分析中的许多困难。 IAB上的二级负载包括抗震载荷,温度变化,蠕变,收缩,后壁和邻接的回物压力,所有这些都会导致梁的上部结构长度和应力变化变化。本研究的目的是识别IABS的分析最有效的参数。调查结果表明,IAB背后的回填材料对IAB的性能具有显着影响。使用基台后面的可压缩材料将增强IABS的役性能。最后,受到热负荷和土壤压力的邻接行为可能会受到大的影响。热膨胀系数显着影响梁轴力,梁弯矩和桩头/邻接位移。

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