Hydro-mechanical numerical evaluation of rainfall-induced fully coupled groundwater flow, land deformation, and failure potential in a variably saturated heterogeneous hill slope with consideration of interlinked rainfall-infiltration-seepage processes

IF 2.8 4区 环境科学与生态学 Q3 ENVIRONMENTAL SCIENCES
Jun-Mo Kim, Min-Soo Kim, Min-Jae Kim, Won-Hong Park
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引用次数: 0

Abstract

A series of steady- and transient-state numerical simulations is performed to evaluate rainfall-induced fully coupled groundwater flow, land deformation, and failure potential in an actual variably saturated heterogeneous hill slope with consideration of interlinked rainfall-infiltration-seepage processes. The slope is variably saturated under various rainfall rates. It is composed of colluvium underlain by weathered rock over fresh rock. As a combined methodology, the so-called mixed-type variable rainfall-infiltration-seepage flow boundary condition and constitutive mathematical equations are implemented first into a generalized fully coupled poroelastic hydro-mechanical numerical model. The resultant numerical model is then used in the numerical simulations. The steady- and transient-state numerical simulations show that both rainfall and layered heterogeneity have significant effects on spatial distributions and temporal changes of fully coupled groundwater flow, land deformation, failure potential, and stability with interlinked rainfall-infiltration-seepage processes in the slope. The steady-state numerical simulations show that, as the rainfall rate increases up to a critical rainfall rate, the slope becomes more saturated with water, and thus its overall stability deteriorates. However, under more than such a critical rainfall rate, the slope becomes fully saturated with water, and thus its hydro-mechanical responses are unchanged. The transient-state numerical simulations show that, as the time progresses under each maximum daily rainfall rate, pressure head buildup and slope unstabilization and failures initiate near the slope toe and then propagate toward the slope crest. Such trends occur faster and stronger as the maximum daily rainfall rate increases. In terms of interlinked rainfall-infiltration-seepage processes, as the rainfall rate increases up to the critical rainfall rate, or as the time progresses under each maximum daily rainfall rate, the seepage face expands from the slope toe toward the slope crest. As a result, rainwater infiltration occurs along the slope surface above the height of the seepage face, while groundwater seepage takes place along the slope surface below it.

考虑降雨-入渗-渗流过程的变饱和非均质山坡降雨引起的地下水流动、土地变形和破坏潜力完全耦合的水力学数值评价
在考虑降雨-入渗-渗流过程相互联系的情况下,对实际变饱和非均质山坡进行了一系列稳态和瞬态数值模拟,以评估降雨引起的地下水流动、土地变形和破坏潜力的完全耦合。在不同的降雨速率下,边坡的饱和程度是不同的。它是由风化岩石下覆在新岩石上的崩积层组成的。将所谓的混合型变降雨-入渗-渗流边界条件和本构数学方程作为一种组合方法,首先实现为广义的全耦合多孔弹性水力学数值模型。然后将所得的数值模型用于数值模拟。稳态和瞬态数值模拟结果表明,降雨和层状非均质性对降雨-入渗-渗流全耦合的地下水流、地表变形、破坏势和稳定性的空间分布和时间变化均有显著影响。稳态数值模拟结果表明,随着降雨速率的增大,达到临界降雨速率后,坡面含水率趋于饱和,整体稳定性恶化。大于此临界降雨量时,坡面水完全饱和,坡面水力学响应基本不变。瞬态数值模拟结果表明,在各最大日降雨量下,随着时间的推移,压头积累和边坡失稳破坏从坡脚附近开始,向坡顶扩散。随着最大日降雨量的增加,这种趋势发生得更快、更强。在降雨-入渗-渗流联动过程中,随着降雨率的增大直至临界降雨率,或在各最大日降雨率下,随着时间的推移,渗流面由坡脚向坡顶扩展。因此,在渗面的高度以上沿坡面发生雨水入渗,而在渗面的高度以下沿坡面发生地下水渗流。
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来源期刊
Environmental Earth Sciences
Environmental Earth Sciences 环境科学-地球科学综合
CiteScore
5.10
自引率
3.60%
发文量
494
审稿时长
8.3 months
期刊介绍: Environmental Earth Sciences is an international multidisciplinary journal concerned with all aspects of interaction between humans, natural resources, ecosystems, special climates or unique geographic zones, and the earth: Water and soil contamination caused by waste management and disposal practices Environmental problems associated with transportation by land, air, or water Geological processes that may impact biosystems or humans Man-made or naturally occurring geological or hydrological hazards Environmental problems associated with the recovery of materials from the earth Environmental problems caused by extraction of minerals, coal, and ores, as well as oil and gas, water and alternative energy sources Environmental impacts of exploration and recultivation – Environmental impacts of hazardous materials Management of environmental data and information in data banks and information systems Dissemination of knowledge on techniques, methods, approaches and experiences to improve and remediate the environment In pursuit of these topics, the geoscientific disciplines are invited to contribute their knowledge and experience. Major disciplines include: hydrogeology, hydrochemistry, geochemistry, geophysics, engineering geology, remediation science, natural resources management, environmental climatology and biota, environmental geography, soil science and geomicrobiology.
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