A Unified Sediment Transport Model for Inlet Application

Abstract

Robust and reliable formulas for predicting bed load and suspended load were developed for application in the nearshore zone where waves and currents may transport sediment separately or in combination. Also, a routine was included to determine the sediment transport in the swash zone, both in the longshore and cross-shore directions. An important objective of the development was to arrive at general sediment transport formulas suitable for a wide range of hydrodynamic, sedimentologic, and morphologic conditions that prevail around coastal inlets. Thus, the formulas yield transport rates under waves and currents, including the effects of breaking waves, wave asymmetry, and phase lag between fluid and sediment velocity for varying bed conditions. Different components of the formulas were previously validated with a large data set on transport under waves and currents, and in the present paper additional comparisons are provided for the complete formulas using data on longshore and cross-shore sediment transport from the laboratory and the field, encompassing the offshore, surf, and swash zones. The predictive capability of the new formulas is the overall highest among a number of existing formulas that were investigated. The complete set of formulas presented in the paper is collectively denoted the Lund-CIRP model.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 2011
Accession Number
ADA578445

Entities

People

  • Benoit Camenen
  • Magnus Larson
  • Pham T. Nam

Organizations

  • Lund University

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Asymmetry
  • Coastal Engineering
  • Data Sets
  • Engineering
  • Environment
  • Equations
  • Flow
  • Fluid Mechanics
  • Models
  • Offshore
  • Personal Information Managers
  • Regions
  • Research Facilities
  • Sedimentation
  • Sediments
  • Shores
  • Waterways

Readers

  • Calculus or Mathematical Analysis
  • Coastal Oceanography
  • Systems Analysis and Design