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Characterizing the variation of small strain shear modulus for silt and sand during hydraulic hysteresis

机译:液压滞后期间淤泥和沙子小应变剪切模量的变化

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Experimental studies have indicated that the small strain shear modulus, Gmax, of unsaturated silt and clay has a greater amount during imbibition than during drainage, when presented as a function of matric suction. However, due to material properties and inter-particle forces, different behavior is expected in the case of sand. Although considerable research has been devoted in recent years to characterize the behaviour of Gmax of sand during drainage, rather less attention has been paid to the effect of hydraulic hysteresis on Gmax and its variations during imbibition. In the study presented herein, an effort has been made to compare the Gmax behavior of specimens of silt and sand during hydraulic hysteresis. In this regard, a series of bender element tests were carried out in a modified triaxial test device with suction-saturation control to evaluate the impact of hydraulic hysteresis on Gmax for specimens of silt and sand. Trends between the Gmax and matric suction for unsaturated sand were found to be different from those for silty specimens. The variations in Gmax showed an up and down trend in both drainage and imbibition paths for sandy specimens, where plotted as a function of matric suction. Results also indicated smaller magnitudes of Gmax upon imbibition than those during drainage; a behavior which is believed to be attributed to variations in suction stress with matric suction. In silty specimens, a stiffer response was measured during imbibition which was hypothesized to be due to drainage-induced hardening experienced by the specimens that was not fully recovered during imbibition.
机译:实验研究表明,在吸入期间,不饱和淤泥和粘土的小菌株剪切模量,Gmax具有比排水期间更大的量。然而,由于材料性质和颗粒力,在沙子的情况下预期不同的行为。近年来,近年来致力于具有相当大的研究,以表征喷砂过程中的Gmax的行为,而是由于液压滞后对Gmax的影响及其在吸收过程中的变化。在本文呈现的研究中,已经努力比较液压滞后期间淤泥和沙子标本的GMAX行为。在这方面,在具有抽吸饱和控制的改性三轴试验装置中进行了一系列弯曲元件测试,以评估水力滞后对淤泥和沙子标本的Gmax的影响。发现Gmax与不饱和砂的原料抽吸之间的趋势与粉冻标本不同。 Gmax的变化显示出砂质样本的排水和吸入路径的上下趋势,其中绘制为Matric抽吸的功能。结果还表明在吸收时比引流期间的吸收较小的Gmax大小;据信归因于使用测力的吸力变化的行为。在粉冻样本中,在吸收期间测量静止的反应,其被假设为由于在吸收期间未完全回收的样本经历的引起引起的硬化。

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