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Numerical Investigation of the Geosynthetic Reinforced Soil-Integrated Bridge System under Static Loading

机译:静载荷作用下土工加筋土木集成桥梁系统的数值研究

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This paper presents numerical simulations of the performance of the Geosynthetic Reinforced Soil-Integrated Bridge System (GRS-IBS) under static loading conditions. Simulations were conducted using a finite-difference program and realistic conditions for system geometry, backfill soil, geosynthetic reinforcement, and applied loads. Simulation results, including lateral facing displacements, settlements, lateral and vertical earth pressures, and reinforcement tensile strains and forces, indicate good performance of GRS-IBS during construction and under traffic loads. A parametric study was conducted to investigate the effects of backfill soil compaction, reinforcement length, reinforcement stiffness, bearing bed reinforcement, bridge seat setback distance, bridge load, and abutment height on the performance of GRS-IBS. Results indicate that reinforcement stiffness, bridge load, and abutment height have the most significant influences on lateral facing displacements and bridge seat settlements. Differential settlements between the bridge and approach roadway were small for all conditions.
机译:本文提供了在静态荷载条件下土工加筋土固桥系统(GRS-IBS)的数值模拟。使用有限差分程序和系统几何,回填土,土工合成材料加筋物和施加载荷的实际条件进行了仿真。仿真结果,包括侧面位移,沉降,横向和垂直土压力以及钢筋的拉伸应变和力,表明GRS-IBS在施工期间和交通荷载下均具有良好的性能。进行了一项参数研究,以研究回填土的压实度,加固长度,加固刚度,支承层加固,桥座后退距离,桥荷载和桥台高度对GRS-IBS性能的影响。结果表明,钢筋的刚度,桥梁荷载和桥台高度对侧向位移和桥梁支座沉降影响最大。在所有情况下,桥梁和引道之间的差异沉降很小。

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