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Prediction equations for estimating maximum lateral displacement and settlement of geosynthetic reinforced soil abutments

机译:用于估算地磁增强土桥的最大横向位移和沉降的预测方程

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The Geosynthetic Reinforced Soil Integrated Bridge System (GRS-IBS), which consists of closely-spaced layers of geosynthetic reinforcement and compacted granular fill material, is a fast, sustainable and cost-effective method for bridge support. The in-service performance of this innovative bridge support system is largely evaluated through the vertical and horizontal deformations of the GRS abutments. This paper presents the development of nonlinear equations for estimating the maximum lateral displacement and settlement of GRS abutments. The parameters that are considered in the prediction equations include abutment geometry (height, facing batter and foundation width), backfill friction angle, reinforcement characteristics (stiffness, spacing, and length), and applied static loads from 50 to 400 kPa. In the development of the prediction equations, a parametric study was first conducted using a validated finite difference numerical model. The results of the parametric study were then used to conduct a regression analysis to develop the equations for estimating the maximum lateral displacement and settlement of GRS abutments under service loads. The equations were validated using three case studies. The developed prediction equations can contribute to a better understanding and enable simple calculations in designing these structures.
机译:土工合成加筋土壤集成桥系统(GRS-IBS)由紧密间隔的地磁加固和压实粒状填充材料层组成,是一种快速,可持续和经济高效的桥梁支撑方法。这种创新的桥梁支持系统的在线性能主要通过GRS支座的垂直和水平变形来评估。本文介绍了用于估计GRS基台的最大横向位移和沉降的非线性方程的发展。在预测方程中考虑的参数包括邻接几何形状(高度,面向面板和基础宽度),回填摩擦角,加强特性(刚度,间隔和长度),并将静电载荷从50到400kPa施加。在预测方程的发展中,首先使用验证的有限差分数值模型进行参数研究。然后使用参数研究的结果进行回归分析,以开发用于估计服务负载下GRS基台的最大横向位移和沉降的方程。使用三种案例研究验证了方程。开发的预测方程可以有助于更好地理解并实现设计这些结构的简单计算。

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