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Settlement Behavior of Soft Subgrade Reinforced by Geogrid-Encased Stone Column and Geocell-Embedded Sand Cushion: A Numerical Analysis

机译:土工饲养石柱和地质蜂窝嵌入式砂垫加固软路基的沉降行为:数值分析

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摘要

The geosynthetic-encased vertical column and geosynthetic-embedded horizontal cushion are recognized as the effective methods to reduce the settlement of the soft subgrade. This paper investigated the settlement behavior of a soft subgrade reinforced by geogrid-encased stone column and geocell-embedded sand cushion using the finite element analysis method (Plaxis 2D). The simulating settlement was in good agreement with the field monitoring data, indicating the reasonability of the designed model and adopted parameters. After that, the factors, geocell layer in sand cushion, encasement length around stone column, and standing time between embankment filling stages, were employed to study their influences on the subgrade settlement. The results showed that the embedment of geocell reduced construction settlement, postconstruction settlement, and differential settlement is attributed to the increase in stiffness of sand cushion and therefore the uniform distribution of additional stress on subgrade surface. When the encasement length of stone column increased from 1D (one time the column diameter) to 8D (full encasement), the settlement in construction stage and postconstruction stage decreased by 32.2% and 35.1%, respectively, which is benefited from the increase in the compression modulus of the column. The maximum lateral deformation occurred at the position of about 2D from the top of the stone column, and it decreased more significantly when the encasement length increased from 1D to 4D than that from 4D to 8D. The encasement length up to 4D is found to be adequate in reducing the subgrade settlement and the column lateral deformation based on the consideration of performance and economy. The extension of the filling interval increased the construction settlement caused by soil consolidation, while it decreased the postconstruction settlement.
机译:土工合成包封的垂直柱和土工合成包埋水平垫被认为是有效的方法来降低软路基的解决。本文调查了使用有限元分析方法(Plaxis 2D)的地质饲养的石柱和Geocell嵌入式砂垫加强了软路基的沉降行为。模拟解决方案与现场监测数据一致,表明设计模型和采用参数的合理性。之后,采用砂垫中的砂垫,围绕石柱周长的地理区域,在路堤填充阶段之间站立的时间,以研究其对路基沉降的影响。结果表明,Geocell减少的建筑沉降,后沉降和差动沉降的嵌入归因于砂垫刚度的增加,从而均匀地分布了路基表面上的额外应力的分布。当石塔的包装长度从1D(柱直径)增加到8D(全面时)时,施工阶段和后施工阶段的沉降分别降低了32.2%和35.1%,从而受益于此列的压缩模量。最大横向变形发生在从石柱顶部的约2D的位置发生,并且当口服长度从1D增加到4D到4D至8D时,它更显着地降低。发现高达4D的外壳长度是为了基于对性能和经济的考虑来降低路基沉降和柱横向变形。填充间隔的延伸增加了土壤固结引起的建设沉降,而它降低了后施工沉降。

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