Scale Invariance of Albedo-Based Wind Friction Velocity

Abstract

Obtaining reliable estimates of aerodynamic roughness is necessary to interpret and accurately predict aeolian sediment transport dynamics. However, inherent uncertainties in field measurements and models of surface aerodynamic properties continue to undermine aeolian research, monitoring, and dust modeling. A new relation between aerodynamic shelter and land surface shadow has been established at the wind tunnel scale, enabling the potential for estimates of wind erosion and dust emission to be obtained across scales from albedo data. Here, we compare estimates of wind friction velocity (u*) derived from traditional methods (wind speed profiles) with those derived from the albedo model at two separate scales using bare soil patch (via net radiometers) and landscape (via MODIS 500 m) datasets. Results show that profile-derived estimates of u* are highly variable in anisotropic surface roughness due to changes in wind direction and fetch. Wind speed profiles poorly estimate soil surface (bed) wind friction velocities necessary for aeolian sediment transport research and modeling. Albedo-based estimates of u* at both scales have small variability because the estimate is integrated over a defined, fixed area and resolves the partition of wind momentum be-tween roughness elements and the soil surface. We demonstrate that the wind tunnel-based calibration of albedo for predicting wind friction velocities at the soil surface (us*) is applicable across scales. The albedo-based approach enables consistent and reliable drag partition correction across scales for model and field estimates of us* necessary for wind erosion and dust emission modeling.

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Document Details

Document Type
Technical Report
Publication Date
Apr 01, 2021
Accession Number
AD1131042

Entities

People

  • Adrian Chappell
  • Nancy P. Ziegler
  • Nicholas P Webb
  • Sandra LeGrand

Organizations

  • Engineer Research and Development Center

Tags

Communities of Interest

  • Sensors
  • Space

DTIC Thesaurus Topics

  • Army
  • Army Corps Of Engineers
  • Atmospheres
  • Atmospheric Motion
  • Boundary Layer
  • Drag
  • Engineering
  • Engineers
  • Erosion
  • Fluid Mechanics
  • Measurement
  • Meteorology
  • New Mexico
  • Remote Sensing
  • Roughness
  • Sedimentation
  • Spatial Distribution
  • Surface Roughness
  • Wind
  • Wind Direction
  • Wind Erosion
  • Wind Tunnels
  • Wind Velocity

Fields of Study

  • Environmental science

Readers

  • Coastal Oceanography
  • Computational Modeling and Simulation
  • Fluid Dynamics.