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Effects of dry density and grain size distribution on soil-water characteristic curves of sandy soils

机译:干燥密度和粒度分布对砂土土壤水特征曲线的影响

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摘要

The unsaturated soil mechanics is receiving increasing attention from researchers and as well as from practicing engineers. However, the requirement of sophisticated devices to measure unsaturated soil properties and time consumption have made the geotechnical engineers keepudaway from implication of the unsaturated soil mechanics for solving practical geotechnical problems. The application of the conventional laboratory devices with some modifications to measure unsaturated soil properties can promote the application of unsaturated soil mechanics into engineering practice. Therefore, in the present study, a conventional direct shear device was modified to measure unsaturated shear strength parameters at low suction. Specially, for theudanalysis of rain-induced slope failures, it is important to measure unsaturated shear strength parameters at low suction where slopes become unstable. The modified device was used to measure unsaturated shear strength of two silty soils at low suction values (0 ~ 50 kPa) that were achieved by following drying path and wetting path of soil-water characteristic curves (SWCCs) of soils. The results revealed that the internal friction angle of soil was not significantly affected by the suction and as well as the drying-wetting SWCCs of soils. The apparent cohesion of soiludincreased with a decreasing rate as the suction increased. Further, the apparent cohesion obtained from soil in wetting was greater than that obtained from soil in drying. Shear stress-shear displacement curves obtained from soil specimens subjected to the same net normal stress anduddifferent suction values showed a higher initial stiffness and a greater peak stress as the suction increased. In addition, it was observed that soil became more dilative with the increase of suction. A soil in wetting exhibited slightly higher peak shear stress and more contractive volume change behaviour than that of in drying at the same net normal stress and the suction.ud
机译:非饱和土的力学越来越受到研究人员和实践工程师的关注。然而,对于测量非饱和土壤特性和时间消耗的复杂设备的要求使得岩土工程师远离了非饱和土力学对解决实际岩土问题的影响。将常规实验室设备进行一些修改以测量非饱和土壤特性可以促进非饱和土壤力学在工程实践中的应用。因此,在本研究中,对传统的直接剪切装置进行了改进,以在低吸力下测量非饱和剪切强度参数。特别是,对于降雨诱发的边坡破坏的分析,重要的是在边坡变得不稳定的低吸力下测量非饱和抗剪强度参数。改进后的装置用于测量低吸力值(0〜50 kPa)下的两种粉质土壤的不饱和抗剪强度,这些吸水度是通过遵循土壤的土壤水特征曲线(SWCC)的干燥路径和润湿路径来实现的。结果表明,土壤的内摩擦角不受土壤的吸力和干湿SWCC的影响。随着吸力的增加,土壤表观凝聚力以降低的速率增加。此外,从湿润土壤获得的表观凝聚力大于在干燥土壤中获得的表观凝聚力。从相同净法向应力和不同吸力值的土壤样品获得的剪应力-剪切位移曲线显示,随着吸力的增加,初始刚度更高,峰值应力更大。另外,观察到随着吸力的增加土壤变得更稀薄。与在相同净法向应力和吸力下干燥的土壤相比,湿润的土壤表现出略高的峰值剪切应力和更收缩的体积变化行为。

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