Anomalous Shear Stress Variation in Wet Granular Medium: Implications for Landslide Lateral Faults

IF 4.6 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY Geophysical Research Letters Pub Date : 2025-04-04 DOI:10.1029/2024GL113816
Chengrui Chang, Kohei Ohno, William H. Schulz, Tetsuo Yamaguchi
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Abstract

Landslide assessments typically focus on the mechanical properties of the basal shear zone, but lateral faults are frequently overlooked, possibly due to their lower normal stresses and variably saturated conditions. Using double-cylinder shear experiments on wet granular systems as analogs for landslide lateral faults, we observe anomalous shear stress variations with fluid volume fractions, defying an expected unimodal relationship associated with capillary cohesion. At low fluid volume fractions, shear strength weakens as the wet grain assembly experiences reduced lateral pressure and increased boundary slip. This boundary slip subsequently vanishes, with an abrupt strengthening due to the dilation of the grain assembly against fluid surface tension as saturation approaches. Strike-slip motion and confinement in this system explain the strength anomaly, highlighting a critical role of lateral faults in landslide stability, particularly in cases where dynamics cannot be adequately explained by monitored pore-water pressure or basal friction.

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湿颗粒介质中的异常剪应力变化:对滑坡横向断裂的启示
滑坡评估通常侧重于基底剪切带的力学特性,但横向断层经常被忽视,可能是由于其较低的正应力和可变的饱和条件。利用湿颗粒系统的双圆柱体剪切实验作为滑坡侧向断层的类似物,我们观察到剪切应力随流体体积分数的异常变化,违背了与毛细内聚力相关的预期单峰关系。当流体体积分数较低时,随着湿颗粒组合侧压降低和边界滑移增加,抗剪强度减弱。这种边界滑移随后消失,随着饱和度的接近,由于颗粒组合对流体表面张力的膨胀而突然加强。该系统中的走滑运动和约束解释了强度异常,突出了横向断层在滑坡稳定性中的关键作用,特别是在动态不能通过监测孔隙水压力或基底摩擦充分解释的情况下。
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来源期刊
Geophysical Research Letters
Geophysical Research Letters 地学-地球科学综合
CiteScore
9.00
自引率
9.60%
发文量
1588
审稿时长
2.2 months
期刊介绍: Geophysical Research Letters (GRL) publishes high-impact, innovative, and timely research on major scientific advances in all the major geoscience disciplines. Papers are communications-length articles and should have broad and immediate implications in their discipline or across the geosciences. GRLmaintains the fastest turn-around of all high-impact publications in the geosciences and works closely with authors to ensure broad visibility of top papers.
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