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Experimental study on the interface behavior between unsaturated completely decomposed granite soil and cement grout.

机译:不饱和完全分解花岗岩土与水泥浆界面行为的试验研究。

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摘要

The prime focus of this research is to investigate the elementary interface behavior between compacted completely decomposed granite (CDG) soil and cement grout under different matric suctions, net stresses and grouting pressures.;Firstly, a series of single-staged consolidated drained direct shear tests are conducted on compacted CDG soil under different matric suctions and net normal stresses. A soil-water retention curve (SWRC) is obtained from the equilibrium water content corresponding to each applied matric suction at zero net stress. The experimental results show that the influence of suction and net stress on shear behavior of soil is significant. Shear strength of soil increases with matric suction and net stress. The suction envelope is observed as nonlinear. Greater dilation angle is found at higher suction with lower net normal stress, while lower or zero dilation angles are observed under higher net normal stress with lower suction, also at saturated condition. A modified model is proposed for predicting the unsaturated shear strength of soils considering the influence of soil-dilation. The experimental shear strength data are found little bit higher than the analytical results at higher suction range under higher net stresses.;Secondly, to investigate the elementary behavior of gravity grouted (0 kPa grouting pressure) interface, and compare with the behavior of CDG soil, a number of interface direct shear tests are performed between compacted soil and cement grout under the same matric suctions and net normal stresses. The behavior of stress-displacement curves of soil-cement grout interface tests is similar to those of soil tests. Matric suction and net normal stress have significant influence on the hardening-softening and contractive-dilative behavior of soil-cement interface. The failure envelopes for different matric suctions are observed as linear. The apparent interface friction angle and adhesion intercept increase with matric suction. The apparent interface friction angles for different suctions are equal to the apparent friction angles of soil under the same suctions.;Finally, to examine the influence of grouting pressure on elementary interface behavior, a series of interface direct shear tests are performed under the same net stresses at both saturated and unsaturated conditions. A model is proposed for interface shear strength at saturated condition considering grouting pressure as an independent variable. The predicted interface shear strength of the proposed model agrees fairly well with the experimental data. At unsaturated condition, the apparent interface friction angle creases with matric suction for individual grouting pressure, but decreases with grouting pressure for particular matric suction. The apparent adhesion intercept increases with matric suction and grouting pressure. The interface strength increases with matric suction at lower suction range, but decreases or remains nearly constant at higher suction range. Similar to CDG soil, the suction envelopes for different grouting pressures are nonlinear. The interface shear strength increases with grouting pressure at lower suctions for particular net stress. On the contrary, a downward trend is obvious for the interface strength under higher suctions for different grouting pressures and net stresses. The interface dilatancy (negative) decreases with grouting pressure. The average interface dilation angles for different grouting pressures are lower compared to those of soil under the same suctions and net stresses.;A general model is proposed to predict the shear strength soil-cement interface incorporating the influence of dilation, matric suction, net stress and grouting pressure. The interface shear strength predicted from the proposed model agrees well with the experimental shear strength data. The shear strength of pressure grouted interface is greater than that of soil within the lower suction range for different net stresses. However, the interface strength is lower than the strength of soil at higher suction range. The strength of higher grouting pressure interface is greater than the strength of CDG soil as well as gravity grouted interface under different net stresses and at saturated condition. This indicates that the stability of slopes can be boosted up at saturated condition by the inclusion of pressure grouted soil nails into the slopes instead of gravity grouted soil nails. (Abstract shortened by UMI.)
机译:本研究的主要重点是研究压实的完全分解花岗岩(CDG)土与水泥浆在不同基质吸力,净应力和灌浆压力下的基本界面行为。首先,一系列单阶段固结排水直接剪切试验在不同基质吸力和净法向应力作用下,在压实的CDG土上进行。从与零净应力下每个施加的基质吸力相对应的平衡含水量获得土壤保水曲线(SWRC)。实验结果表明,吸力和净应力对土壤剪切特性的影响很大。土壤的抗剪强度随着基质吸力和净应力的增加而增加。吸力包络线是非线性的。在较高的吸力和较低的净法向应力下会发现较大的膨胀角,而在较高的净法向应力和较低的吸力下(在饱和条件下)也会观察到较小或零的膨胀角。提出了一种修正模型,考虑了土体膨胀的影响,预测了土体的非饱和抗剪强度。在较高的净应力下,在较高的吸力范围内,实验抗剪强度数据略高于分析结果。其次,研究重力灌浆(0 kPa灌浆压力)界面的基本特性,并与CDG土的性能进行比较,在相同的基质吸力和净法向应力作用下,在压实的土壤和水泥浆之间进行了许多界面直接剪切试验。水泥砂浆界面试验的应力-位移曲线行为与土壤试验相似。基质吸力和净法向应力对水泥土界面的软化和收缩-膨胀行为有重要影响。观察到不同基质吸力的失效范围是线性的。表观界面摩擦角和粘附截距随基质吸力而增加。不同吸力下的表观界面摩擦角等于相同吸力下的土壤表观摩擦角。最后,为研究注浆压力对基本界面特性的影响,在相同的网下进行了一系列界面直接剪切试验在饱和和不饱和条件下的应力。提出了以注浆压力为独立变量的饱和状态下界面抗剪强度的模型。该模型的预测界面抗剪强度与实验数据吻合得很好。在非饱和条件下,表观界面摩擦角随单个灌浆压力的基质吸力而增加,但随特定基质抽吸的灌浆压力而降低。表观粘附截距随着基质吸力和灌浆压力的增加而增加。在较低的吸力范围内,界面强度随基质吸力而增加,但在较高的吸力范围内则降低或保持近乎恒定。类似于CDG土,不同灌浆压力的吸力包络线是非线性的。对于特定的净应力,在较低的吸力下,界面抗剪强度随灌浆压力的增加而增加。相反,对于不同的灌浆压力和净应力,较高吸力下的界面强度明显下降。界面膨胀率(负值)随着灌浆压力的降低而减小。在相同的吸力和净应力下,不同灌浆压力下的平均界面膨胀角要比土壤低。;提出了一个通用模型来预测受膨胀,基体吸力,净应力影响的土-水泥界面的抗剪强度和灌浆压力。从提出的模型预测的界面抗剪强度与实验抗剪强度数据非常吻合。对于不同的净应力,在较低的吸力范围内,压力灌浆界面的抗剪强度要大于土壤的抗剪强度。但是,在较高的吸力范围内,界面强度低于土壤的强度。在不同的净应力和饱和条件下,较高的灌浆压力界面强度大于CDG土以及重力灌浆界面强度。这表明在饱和条件下,通过在斜坡中加入压力灌浆土钉代替重力灌浆土钉,可以提高斜坡的稳定性。 (摘要由UMI缩短。)

著录项

  • 作者

    Hossain, Md Akhtar.;

  • 作者单位

    Hong Kong Polytechnic University (Hong Kong).;

  • 授予单位 Hong Kong Polytechnic University (Hong Kong).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 217 p.
  • 总页数 217
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:00

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