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首页> 外文期刊>International journal of geomechanics >Numerical Evaluation of Consolidation of Soft Foundations Improved by Sand-Deep-Mixed Composite Columns
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Numerical Evaluation of Consolidation of Soft Foundations Improved by Sand-Deep-Mixed Composite Columns

机译:砂土-深层混合桩加固软土地基的数值评估

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With the development of column technology, a new concept of composite columns has been proposed. Composite columns integrate two columns into one single column, which has a small inner column installed in the middle of a large column. The purpose of the composite column is to combine favorable features of these two constituent columns. The inner and outer columns can have different stiffness, strength, and permeability values and different combinations. In this study, a sand-deep-mixed column was investigated, which included a deep-mixed (DM) column in the middle of a sand column. Because two component columns work together in the composite column, the load-transfer mechanism of the foundation becomes complicated. The bearing capacity of the soft foundation improved by composite columns has been studied. However, the consolidation of the soil foundation improved by composite columns has not been investigated. In this study, a finite-element method was used to model the soft foundation improved by the sand-DM composite (SDMC) column subjected to rigid loading. The SDMC column was fully penetrated through the soft soil and keyed into a firm soil layer. The concept of a unit cell was adopted, and one-quarter of the unit cell was utilized due to the symmetry of the model. The SDMC column was modeled as a linearly elastic perfectly plastic material, and the surrounding soil was modeled as an elastic material. Two additional soft foundations improved by sand columns and DM columns were modeled as well for comparison purposes. The stress concentration ratio, excess pore-water pressure, column bulging, and consolidation settlement of the three soft foundations were analyzed and are discussed. The numerical results show that the vertical effective stress on the top of the SDMC column increased to the maximum value and then decreased to the steady-state value, whereas the vertical effective stress on the top of the soil decreased first and then slightly increased to the steady-state value. The maximum stress values of the columns and the steady-state stress values of the soil indicated the yielding of the columns and the completion of consolidation, respectively. The process of stress transfer in the foundation improved by the SDMC column can be divided into the following three phases: (1) the stress was transferred from the soil to the inner DM column and the outer sand column before the inner DM column yielded, (2) the stress was transferred from the inner DM column to the outer sand column after the inner DM column yielded, and (3) the stress was transferred from the outer sand column to the soil after the outer sand column yielded. The SDMC column had a larger stress concentration ratio than the sand column but a smaller ratio than did the DM column. In addition, the SDMC column resulted in larger bulging and settlement than the DM column but smaller ones than the sand column. The foundations improved by the SDMC column and the sand column had higher degrees of consolidation than did the DM column.
机译:随着柱技术的发展,提出了复合柱的新概念。复合柱将两根柱集成为一个柱,在大柱的中间装有一个小的内柱。复合柱的目的是结合这两个组成柱的有利特性。内柱和外柱可以具有不同的刚度,强度和磁导率值以及不同的组合。在这项研究中,研究了一种深层混合塔,其中在深层混合(DM)柱的中间设有一个沙层。由于两个成分列在组合列中共同工作,因此基础的荷载传递机制变得复杂。研究了复合柱改善软土地基的承载力。但是,尚未研究复合柱改善的土壤基础固结。在这项研究中,采用有限元方法对由砂-DM复合材料(SDMC)柱承受刚性荷载而改善的软土地基进行建模。 SDMC柱完全穿过软土并固定在牢固的土层中。采用了单元格的概念,由于模型的对称性,所以使用了单元格的四分之一。 SDMC柱建模为线性弹性的完全塑性材料,周围的土壤建模为弹性材料。为了进行比较,还对沙柱和DM柱改进的另外两个软土地基进行了建模。分析并讨论了三个软土地基的应力集中比,超孔隙水压力,鼓胀和固结沉降。数值结果表明,SDMC柱顶部的竖向有效应力先增大到最大值,然后减小到稳态值,而土层顶部的竖向有效应力先减小,然后才略有增加。稳态值。柱的最大应力值和土壤的稳态应力值分别表示柱的屈服和固结的完成。 SDMC柱改善了地基中的应力传递过程,可分为以下三个阶段:(1)在内部DM柱屈服之前,应力已从土壤传递至内部DM柱和外部砂柱。 2)内层DM柱屈服后,应力从内层DM柱传递到外层砂柱;(3)内层DM柱屈服后,应力从外层砂柱传递到土壤。 SDMC柱的应力集中比比砂柱大,但比DM柱小。此外,SDMC色谱柱比DM色谱柱产生更大的鼓胀和沉降,而比砂石色谱柱产生更小的膨胀和沉降。 SDMC柱和砂柱改善了地基的固结度比DM柱高。

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