Gridded Surface Subsurface Hydrologic Analysis (GSSHA) User's Manual; Version 1.43 for Watershed Modeling System 6.1

Abstract

The need to simulate surface water flows in watersheds with diverse runoff production mechanisms has led to the development of the physically-based hydrologic model Gridded Surface Subsurface Hydrologic Analysis (GSSHA). GSSHA is a reformulation and enhancement of the two-dimensional, physically based model CASC2D. The GSSHA model is capable of simulating stream flow generated by a variety of sources, including runoff due to infiltration excess and saturated sources areas and seeps, as well as direct interaction between streams and the saturated groundwater. The model employs mass-conserving solutions of partial differential equations. The hydrologic components are closely linked, assuring an overall mass balance. The model has been applied to a diverse variety of projects and has been proven useful for analysis of hydrologic and sedimentation processes, and can provide information needed for designed systems and the potential effects of projects, land-use change, environmental restoration, best management practices, climate change, and related issues. This manual describes the model formulation, model input, and provides information on the practice of hydrologic modeling with GSSHA, and hydrologic modeling in general.

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Document Details

Document Type
Technical Report
Publication Date
Sep 01, 2006
Accession Number
ADA455335

Entities

People

  • Charles W Downer
  • Fred L. Ogden

Organizations

  • Engineer Research and Development Center

Tags

Communities of Interest

  • Cyber
  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Barometric Pressure
  • Climate Change
  • Computer Programs
  • Computers
  • Environmental Protection
  • Fluid Flow
  • Fluids
  • Geographic Information Systems
  • Geography
  • Graphical User Interface
  • Groundwater
  • Heat Energy
  • Heat Of Vaporization
  • Latent Heat
  • Measurement
  • Meteorology
  • Two Dimensional

Readers

  • Computational Modeling and Simulation
  • Wetland-Land-Environmental Management.