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Relating the depth of the water table to the depth of weathering

机译:将水位的深度与风化深度相关联

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Weathering of bedrock creates and occludes permeability, affecting subsurface water flow. Often, weathering intensifies above the water table. On the contrary, weathering can also commence below the water table. To explore relationships between weathering and the water table, a simplified weathering model for an eroding hillslope was formulated that takes into account both saturated and unsaturated subsurface water flow (but does not fully account for changes in dissolved gas chemistry). The phreatic line was calculated using solutions to mathematical treatments for both zones. In the model, the infiltration rate at the hill surface sets both the original and the eventual steady-state position of the water table with respect to the weathering reaction front. Depending on parameters, the weathering front can locate either above or below the water table at steady state. Erosion also affects the water table position by changing porosity and permeability even when other hydrological conditions (e.g. hydraulic conductivity of parent material, infiltration rate at the surface) do not change. The total porosity in a hill (water storage capacity) was found to increase with infiltration rate (all else held constant). This effect was diminished by increasing the erosion rate. We also show examples of how the infiltration rate affects the position of the water table and how infiltration rate affects weathering advance. Published 2020. This article is a U.S. Government work and is in the public domain in the USA
机译:高跟鞋的风化会产生和闭塞渗透性,影响地下水流。通常,风化强烈加强水位。相反,风化也可以在水位下面开始。为了探讨风化和水位的关系,配制了腐蚀山坡的简化风化模型,考虑了饱和和不饱和的地下水流(但不完全占溶解气体化学的变化)。使用溶液使用对两个区域的数学处理来计算潜水线。在该模型中,山丘表面的渗透率设定了水位的原始稳态位置,相对于耐候反应前方。根据参数,风化前部可以在稳态处定位在水位上方或下方。即使当其他水力条件(例如,母体材料的液压导电性,表面的渗透率)也不会改变孔隙率和渗透性,侵蚀也会通过改变孔隙率和渗透率来影响水位位置。发现山坡(储水能力)中的总孔隙率随渗透率(其他所有保持常数)增加。通过增加侵蚀率来减小这种效果。我们还展示了渗透率如何影响水位的位置以及渗透率如何影响风化前进的例子。公布2020年。本文是美国政府工作,并在美国的公共领域

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