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Evaluation of dynamic compaction to improve saturated foundation based on the fluid-solid coupled method with soil cap model

机译:基于土帽模型的流体 - 固耦合方法评价动力压实改善饱和基础

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摘要

This paper presented a dynamic fluid-solid coupled finite element (FE) method incorporating the soil cap yield hardening model to analyze the improvement on saturated foundation under dynamic compaction (DC). Biot's dynamic u-U-p formulation was employed to describe the coupling of pore fluid and solid phases, which was discretized into finite elements by application of the Galerkin method and viscous Cartesian connectors. The proposed numerical model showed reasonably good agreement with the existing analytical solutions of one-dimensional transient loading problems and field measurement of dynamic compaction. The effects of groundwater table and soil permeability were examined via the development of excess pore water pressure, effective soil stress and void ratio. Results showed that groundwater table had a significant effect on the foundation improvement by DC. Higher groundwater table resulted in larger excess pore water pressure, and effective soil stress was not found to develop under the groundwater table during the compaction process. The decrement in the void ratio was only limited to soils located above the groundwater table, and a critical depth of groundwater table existed for the DC reinforcement in fine soil foundation, which was suggested to be 6 m for the DC reinforcement with the tamping energy of 2500 kN.m per blow. Four soil permeability coefficients of k = 10(-2) m/s, 10(-3) m/s, 10(-5) m/s and 10(-7) m/s were chosen in the parametric analysis, which represented gravel, coarse sand, silt and silty clay, respectively. Higher permeability resulted in lower excess pore water pressure and larger decrease in void ratio. However, the saturated foundation was not suitable to reinforce by dynamic compaction, no matter how much the soil permeability was. Compared to the increase in soil permeability, it was more crucial to lower the groundwater table before implementing dynamic compaction. Moreover, the gravel columns were preferred to be used to accelerate the drainage of groundwater than the sand columns.
机译:本文介绍了一种动态的流体固体耦合有限元(Fe)方法,其包含土盖产量硬化模型,分析动态压实(DC)下饱和基础的改善。使用Biot的动态U-U-P制剂来描述孔隙流体和固相的偶联,通过应用Galerkin方法和粘性笛卡尔连接器将其离散化为有限元。该拟议的数值模型与现有的一维瞬态加载问题和动态压实的现有分析解和现场测量的分析解。通过孔隙水压力,有效土壤应激和空隙率的显影检查地下水位和土壤渗透性的影响。结果表明,地下水位对DC的基础改善有显着影响。较高的地下水表导致孔隙水压力较大,并且在压实过程中未发现有效的土壤应力在地下水位下显影。空隙率的减量仅限于位于地下水位上方的土壤,并且在精细土坑中的DC增强件存在临界深度的地下水位,这是针对DC加固的夯实能量为6米每次打击2500 kn.在参数分析中选择k = 10(-2)m / s,10(-3)m / s,10(-5)m / s和10(-5)m / s的四个土壤渗透系数,分别代表砾石,粗砂,淤泥和粉质粘土。较高的渗透率导致孔隙水压力较低,并且空隙率的降低较大。然而,无论土壤渗透率如何,饱和基础都不适合通过动态压实加强。与土壤渗透率的增加相比,在实施动态压实之前,在地下水表中更为重要。此外,砾石柱优选用于加速地下水的排水而不是砂柱。

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  • 来源
    《Computers and Geotechnics》 |2020年第9期|103686.1-103686.12|共12页
  • 作者单位

    Shandong Univ Sch Qilu Transportat Jinan 250021 Shandong Peoples R China|Shandong Univ Res Ctr Intelligent Percept & Construct Rd & Brid Jinan Shandong Peoples R China;

    Shandong Univ Sch Qilu Transportat Jinan 250021 Shandong Peoples R China|Shandong Univ Res Ctr Intelligent Percept & Construct Rd & Brid Jinan Shandong Peoples R China;

    Shandong Univ Sch Qilu Transportat Jinan 250021 Shandong Peoples R China|Shandong Univ Res Ctr Intelligent Percept & Construct Rd & Brid Jinan Shandong Peoples R China;

    Shandong Univ Sch Qilu Transportat Jinan 250021 Shandong Peoples R China|Shandong Univ Res Ctr Intelligent Percept & Construct Rd & Brid Jinan Shandong Peoples R China;

    Shandong Univ Sch Qilu Transportat Jinan 250021 Shandong Peoples R China|Shandong Univ Res Ctr Intelligent Percept & Construct Rd & Brid Jinan Shandong Peoples R China;

    Qilu Transportat Dev Grp Jinan 250101 Shandong Peoples R China;

    Univ Warwick Sch Engn Coventry CV4 7AL W Midlands England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Fluid-solid coupled; Dynamic compaction; Groundwater table; Soil permeability; Excess pore water pressure; Void ratio;

    机译:流体固相耦合;动态压实;地下水位;土壤渗透性;过量的孔隙水压;空隙率;

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