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干湿循环条件下考虑裂隙的膨胀土渗透特性

The infiltration characteristics of expansive soil considering fracture under wet-dry cycle conditions.

作者信息

Zhao Ya, Zhang Hongri, Wang Guiyao, Yang Yanqi

机构信息

School of Management, Hunan University of Information Technology, Changsha, 414000, China.

School of Civil Engineering, Changsha University of Science & Technology, Changsha, 414000, China.

出版信息

Heliyon. 2024 Aug 23;10(17):e36840. doi: 10.1016/j.heliyon.2024.e36840. eCollection 2024 Sep 15.

Abstract

Expansive soils exhibit a relatively low permeability coefficient when structurally intact, allowing for their treatment as a homogeneous medium in calculations. However, the susceptibility of the slope's shallow area to numerous primary and secondary cracks under the influence of wetting and drying cycles challenges this approach. Failing to account for the impact of these surface cracks on the soil's permeability can result in a significant discrepancy between calculated and actual conditions. This study initially validated a predictive model for the soil-water characteristic curve that incorporates the effects of wetting and drying cycles. Subsequently, leveraging the fracture volume ratio parameter (pv) and the bimodal distribution characteristics of the dual-pore structure, we proposed a permeability coefficient model for expansive soils that considers fracture effects. This model was integrated with the validated soil-water characteristic curve model to facilitate the analysis of expansive soil's infiltration characteristics under cyclic wetting and drying conditions. The findings indicate that the predictive model accurately captures the hysteresis effect of expansive soil's soil-water characteristics. Moreover, the permeability coefficient model, which accounts for fractures, effectively reflects the infiltration properties of cracked expansive soil and enables the prediction and calculation of its permeability under multiple cycles of wetting and drying. This study introduces a predictive model for the soil-water characteristic curve, leveraging the hysteresis properties of expansive soil. Additionally, it presents a model for calculating the permeability coefficient of expansive soil, utilizing a dual-peak characteristic function. The development of these models establishes a theoretical basis for the computation and analysis of the soil's permeability attributes.

摘要

膨胀土在结构完整时表现出相对较低的渗透系数,这使得在计算中可将其视为均质介质进行处理。然而,在干湿循环的影响下,边坡浅层区域易出现大量的原生和次生裂缝,这对这种方法提出了挑战。若不考虑这些表面裂缝对土壤渗透性的影响,可能会导致计算条件与实际情况之间存在显著差异。本研究首先验证了一个考虑干湿循环影响的土壤水分特征曲线预测模型。随后,利用裂隙体积比参数(pv)和双孔隙结构的双峰分布特征,提出了一个考虑裂隙效应的膨胀土渗透系数模型。该模型与经验证的土壤水分特征曲线模型相结合,以便于分析膨胀土在循环干湿条件下的渗透特性。研究结果表明,该预测模型能够准确捕捉膨胀土土壤水分特征的滞后效应。此外,考虑裂隙的渗透系数模型有效地反映了裂隙膨胀土的渗透特性,并能够预测和计算其在多次干湿循环下的渗透率。本研究利用膨胀土的滞后特性,引入了一种土壤水分特征曲线的预测模型。此外,还提出了一种利用双峰特征函数计算膨胀土渗透系数的模型。这些模型的建立为土壤渗透特性的计算和分析奠定了理论基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c99/11401172/10bd59ae9c9f/gr1.jpg

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