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Time-Dependent Strength Gain in Recently Disturbed Granular Materials.

机译:最近受干扰的颗粒材料中随时间变化的强度增益。

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摘要

Prior to construction of building foundations, dams, roads, and other infrastructure components, soil improvement is often required to improve the strength and/or liquefaction resistance of sand deposits. After improvement, initial tests can show low strength, seemingly indicating inadequate improvement. However, after manifestation of time-dependent strength gain in recently improved, and therefore disturbed granular materials, commonly called sand aging, low initial test results are shown to be not indicative of long term behaviors. The motivation for this research is to predict sand aging effects on penetration resistance in order to prevent construction delays due to initial failure to meet quality assurance metrics.;Three field experiments and a laboratory experimentation program were conducted as part of this study. Loose sand layers in Griffin, Indiana and New Madrid, Missouri were disturbed using explosive densification, vibroseis shaking, and impact pier installation. Different methods of disturbance were used in order to study the effects of varying energy inputs and aeration of the pore fluid. In situ geotechnical tests, including the cone penetration test (CPT), dilatometer test (DMT), vision CPT (VisCPT), and shear wave velocity (Vs) measurements, were conducted at each experiment site to quantify sand aging. Time-dependent strength gain was recorded following explosive compaction and impact pier installation. Additionally, cyclic triaxial testing on reconstituted samples of Griffin sand showed an increase in liquefaction resistance with time following sample preparation.;The effects of factors proposed to influence sand aging behavior were investigated using a larger database of sand aging case histories, including the three experiments performed as part of this research project. A method of predicting sand aging based on disturbance method, effective vertical stress, and time is presented. This prediction method represents an improvement over previously proposed prediction methods due to its ease of application at new sites requiring soil improvement. The long term impact of this research is to improve current methods of predicting sand aging effects, reducing the risk of construction delays and unnecessary additional soil improvement.
机译:在建造建筑基础,水坝,道路和其他基础设施组件之前,通常需要对土壤进行改良,以提高沙层的强度和/或抗液化性。改进后,初步测试可能会显示出较低的强度,似乎表明改进不足。但是,随着时间强度强度的提高在最近有所改善,因此被干扰的粒状材料(通常称为沙粒老化)出现后,较低的初始测试结果并未表明其长期行为。这项研究的目的是预测砂土老化对渗透强度的影响,以防止由于最初未能满足质量保证指标而导致的施工延误。;进行了三个野外实验和一个实验室实验计划。爆炸致密化,振动震荡和冲击墩的安装扰乱了印第安纳州格里芬和密苏里州新马德里的松散沙层。为了研究变化的能量输入和孔隙流体通气的影响,使用了不同的扰动方法。在每个实验地点都进行了现场岩土工程测试,包括锥体渗透测试(CPT),膨胀计测试(DMT),视觉CPT(VisCPT)和剪切波速度(Vs)测量,以量化砂龄。爆炸压实和冲击墩安装后记录了随时间变化的强度。此外,对格里芬沙的重组样品进行的循环三轴试验表明,样品制备后,耐液化性随时间而增加。;使用更大的沙龄案例历史数据库,包括三个实验,研究了建议的影响沙龄行为的因素的影响作为该研究项目的一部分。提出了一种基于扰动法,有效竖向应力和时间的砂土老化预测方法。该预测方法代表了对先前提出的预测方法的改进,因为它易于在需要土壤改良的新场所应用。这项研究的长期影响是改进目前的预测沙粒老化影响的方法,减少施工延误的风险和不必要的额外土壤改良方法。

著录项

  • 作者

    Saftner, David A.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Civil.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 338 p.
  • 总页数 338
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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