Macroscopic and microscopic analysis of the effects of moisture content and dry density on the strength of loess.

IF 2.6 4区 综合性期刊 Q2 MULTIDISCIPLINARY SCIENCES
Liangliang Bao, Feng Wei
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引用次数: 0

Abstract

To clarify the impact of moisture content and dry density on the strength of loess, the remolded loess samples with different moisture content and dry density were prepared, and the influence of moisture content and dry density on loess strength was explored from the macro level by direct shear test without suction control. On this basis, the mechanism of the influence of moisture content and dry density on loess strength was explored from the micro level by nuclear magnetic resonance method. The research results indicate that: In the case of low water content, there are peak points in the stress-strain curve of remolded loess, exhibiting strain softening characteristics. In the case of high water content, there is no obvious peak in the stress-strain curve, exhibiting strain hardening characteristics. Moisture has a significant impact on the shear strength of remolded loess. As the moisture content of the soil sample increases, the cohesion decreases significantly, and the change in internal friction angle is not obvious. As the moisture content continues to increase, the free water content continues to increase. Free water will continuously soften the soil particle structure, reduce the bonding force between soil particles, and cause the cohesion to decrease with the increase of moisture content. The change in dry density also has a significant impact on the shear strength parameters of remolded loess. As the dry density of the soil sample increases, the cohesion increases. The smaller the dry density, the larger the pore ratio, and the looser the contact between soil particles, weakening the bonding effect. The larger the pore ratio, the more bound water is converted to free water, and the strong bonding force between the water film and soil particles disappears. Both of these microscopic factors can lead to a decrease in cohesion with a decrease in dry density.

含水量和干密度对黄土强度影响的宏观和微观分析。
为明确含水率和干密度对黄土强度的影响,制备了不同含水率和干密度的重塑黄土样品,并通过无吸力控制的直接剪切试验从宏观上探讨了含水率和干密度对黄土强度的影响。在此基础上,利用核磁共振方法从微观层面探讨了含水量和干密度对黄土强度的影响机理。研究结果表明在含水量较低的情况下,重塑黄土的应力-应变曲线存在峰值点,表现出应变软化特征。含水量高时,应力-应变曲线无明显峰值,表现出应变硬化特征。水分对重塑黄土的剪切强度有显著影响。随着土样含水量的增加,内聚力明显下降,内摩擦角变化不明显。随着含水量的不断增加,自由水含量也在不断增加。自由水会不断软化土粒结构,降低土粒间的结合力,使内聚力随着含水量的增加而减小。干密度的变化对重塑黄土的剪切强度参数也有很大影响。随着土样干密度的增加,内聚力也随之增加。干密度越小,孔隙比越大,土粒之间的接触越松散,粘结效果越弱。孔隙比越大,越多的结合水转化为自由水,水膜与土壤颗粒之间的强粘结力消失。这两个微观因素都会导致内聚力随着干密度的降低而降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Science Progress
Science Progress Multidisciplinary-Multidisciplinary
CiteScore
3.80
自引率
0.00%
发文量
119
期刊介绍: Science Progress has for over 100 years been a highly regarded review publication in science, technology and medicine. Its objective is to excite the readers'' interest in areas with which they may not be fully familiar but which could facilitate their interest, or even activity, in a cognate field.
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