4.7 Article

The Limits of Homogenization: What Hydrological Dynamics can a Simple Model Represent at the Catchment Scale?

期刊

WATER RESOURCES RESEARCH
卷 57, 期 6, 页码 -

出版社

AMER GEOPHYSICAL UNION
DOI: 10.1029/2020WR029528

关键词

Dynamic storage; hydrology model; storage-discharge relationship; streamflow generation; upscaling

资金

  1. Penn State College of Agriculture Sciences, Department of Ecosystem Science and Management
  2. National Science Foundation [EAR - 0725019, EAR - 1239285, EAR - 1331726]

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The study compared the performance of complex and simple models in simulating hydrological dynamics at Shale Hills watershed, finding that the simple model can reproduce some hydrological dynamics but has limitations in ignoring spatial details.
Large-scale models often use a single grid to represent an entire catchment assuming homogeneity; the impacts of such an assumption on simulating evapotranspiration (ET) and streamflow remain poorly understood. Here, we compare hydrological dynamics at Shale Hills (PA, USA) using a complex model (spatially explicit, >500 grids) and a simple model (spatially implicit, two grids using effective parameters). We asked two questions: What hydrological dynamics can a simple model reproduce at the catchment scale? What processes does it miss by ignoring spatial details? Results show the simple model can reproduce annual runoff ratios and ET, daily discharge peaks (e.g., storms, floods) but not discharge minima (e.g., droughts) under dry conditions. Neither can it reproduce different streamflow from the two sides of the catchment with distinct land surface characteristics. The similar annual runoff ratios between the two models indicate spatial details are not as important as climate in reproducing annual scale ET and discharge partitioning. Most of the calibrated parameters in the simple model are within the ranges in the complex model, except that effective porosity has to be reduced to 40% of the average porosity from the complex model. The form of the storage-discharge relationship is similar. The effective porosity in the simple model however represents the dynamic and mobile water storage in the effective drainage area of the complex model that connects to the stream and contributes to high streamflow; it does not represent the passive, immobile water storage in the often disconnected uphill areas. This indicates that an additional uphill functioning unit is needed in the simple model to simulate the full spectrum of high-low streamflow dynamics in natural catchments.

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