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Finite element analysis of lateral earth pressure on sheet pile walls

机译:板桩墙体侧面压力的有限元分析

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Sheet pile walls providing lateral earth support are widely employed as excavation supporting systems for cutting slopes along the high-speed railway. In this study, a validated three-dimensional finite element (FE) model based on field measurements was used to explore lateral earth pressure distribution on sheet pile walls, aiming to provide guidelines and recommendations for design of the sheet pile walls. To this end, the influence of pile length, sheet's location, pile's stiffness, and soil properties on the pile performance were investigated. The results showed that the optimum pile length was about 14 m for the sheet pile walls at a China high-speed railway. The sheet's location could affect the formation of soil arching and the mechanism of earth pressure distribution. The moment of inertia of sheet pile walls was found to be effective in controlling pile displacement and earth pressure, compared to Young's modulus of the pile. Variations of soil parameters led to negligible changes in the earth pressure distribution. Furthermore, a proposed simplified straight-line form for earth pressure diagram based upon the FE analysis was developed. Compared with traditional earth pressure methods, the proposed diagram considers the sheet effect. Overall, the conducted study provided useful help toward the process of safer design and more economical sheet pile walls.
机译:提供横向地球支撑的板桩墙被广泛采用作为沿高速铁路切割斜坡的挖掘支撑系统。在该研究中,基于现场测量的验证的三维有限元(FE)模型用于探索板桩墙上的侧向接地压力分布,旨在提供用于薄板桩墙的设计的指导和建议。为此,研究了桩长,板材位置,桩刚度和土壤性能对桩性能的影响。结果表明,中国高速铁路的板桩墙最佳桩长约为14米。床单的位置可能影响土拱的形成和地球压力分布的机制。与杨氏模量相比,发现薄板壁的惯性矩在控制桩位移和地球压力方面有效。土壤参数的变化导致地球压力分布的可忽略不计。此外,开发了一种基于Fe分析的基于Fe分析的接地压力图的提出的简化的直线形式。与传统地球压力方法相比,所提出的图认为纸张效果。总的来说,进行的研究为更安全的设计和更经济的板墙的过程提供了有用的帮助。

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