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A model to couple overland flow and infiltration into macroporous vadose zone
Authors:H Ruan  T H Illangasekare  
Institution:

a USDA-ARS-NPA, Great Plains System Research Unit, P.O. Box E, 301 S. Howes Street, Fort Collins, CO 80522, USA

b Division of Environmental Science and engineering, Colorado School of Mines, Golden, CO 80401-1887, USA

Abstract:Most vegetated land surfaces contain macropores that may have a significant effect on the rate of infiltration of water under ponded conditions on the ground surface. Owing to the small-scale variations of the land topography (microtopography), only portions of the land area may get ponded during the process of overland flow. As the macropores transmit water at much higher rates than the primary soil matrix, higher macropore activation in ponded areas produces larger effective infiltration rates into the soil. Therefore, overland flow and infiltration into the macroporous vadose zone are interrelated. Representing the microtopographic variation of the land surface by a simple sine wave function, a method was developed to relate the ponding area to the average ponding depth which was determined by overland flow. A numerical model coupling overland flow and infiltration into the macroporous vadose zone was developed. Overland flow was simulated using the St. Venant equations with the inertia terms neglected. A single macropore model was used to simulate the infiltration into the macroporous vadose zone. The interaction between overland flow and the infiltration into the macroporous vadose zone was analyzed for a hypothetical watershed. The sensitivity analysis revealed that the interaction of macropore flow and overland flow is significant. For the conditions tested, the macropore flow and the overland flow were found to be more sensitive to the macroporosity and less sensitive to the microtopographic surface variation.
Keywords:Macropore flow  Overland flow  Infiltration  Vadose zone  Simulation and interaction
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