A Distributed, Physically-Based, Rainfall-Runoff Model Incorporating Topography for Real-Time Flood Forecasting

Abstract

This report presents a distributed, physically-based model of runoff generation in a catchment, for operation use in flood forecasting. The model accounts for both the infiltration excess and saturation excess mechanisms of runoff production from watersheds, and for lateral subsurface flows. The effect of local terrain slope and topography on subsurface flows and the development of areas of saturated soil is accounted for. The model uses spatial discretization into rectangular elements which correspond to the grid of a digital elevation map. Each basin element consists of a soil column in which hydraulic conductivity decreases with depth, in the form of an exponential function. Spatial discretization allows for distributed terrain slope, soil parameters, moisture conditions, and rainfall inputs. Time discretization allows for consideration of time-variable rainfall rates. The mathematical models uses the kinematic approximation of infiltration and subsurface water flow which is assumed to occur only within the porous soil matrix. The kinematic model of infiltration is used to show how decreasing conductivity with depth may result in the development of a zone of perched saturation during a rainstorm, and that the water flow in the perched saturated zone is diverted laterally if the terrain is inclined.

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Document Details

Document Type
Technical Report
Publication Date
Oct 01, 1990
Accession Number
ADA231630

Entities

People

  • Dara Entekhabi
  • David G. Tarboton
  • Mariza C. Cabral
  • Rafael L. Bras

Organizations

  • Massachusetts Institute of Technology

Tags

Communities of Interest

  • Advanced Electronics
  • Energy and Power Technologies
  • Materials and Manufacturing Processes
  • Sensors

DTIC Thesaurus Topics

  • Civil Engineering
  • Differential Equations
  • Drainage Basins
  • Floods
  • Geography
  • Groundwater
  • Information Systems
  • Measurement
  • Meteorological Radar
  • Moisture
  • Moisture Content
  • Planetary Sciences
  • Saturated Soils
  • Terrain
  • Time Intervals
  • Topography
  • Water Resources

Fields of Study

  • Agricultural and Food sciences

Readers

  • Agricultural Chemistry/Soil Science
  • Coastal and Marine Engineering/Sediment Transport/Hydraulic Engineering
  • Computational Modeling and Simulation