An Investigation of the Application of Taylor's Hypothesis to Atmospheric Boundary Layer Turbulence
Open Access
- 1 May 1974
- journal article
- Published by American Meteorological Society in Journal of the Atmospheric Sciences
- Vol. 31 (4) , 990-1002
- https://doi.org/10.1175/1520-0469(1974)031<0990:aiotao>2.0.co;2
Abstract
The application of Taylor's hypothesis to atmospheric boundary layer turbulence at heights of 15, 30 and 58 m has been investigated by correlation analysis and phase-spectral analysis of data taken from lines of meteorological towers when the mean wind direction was essentially along the tower line. The time lag of maximum cross correlation between parallel components measured at different alongwind locations indicates that the eddy structure travels slightly faster than the mean value of the longitudinal wind at the same height. The autocorrelation functions in space and in time for the longitudinal and vertical components show good agreement, as predicted by Talyor's hypothesis, for space lags up to 252 m. The agreement for the lateral component is inferior for lags ≥32 m. According to Lin, Taylor's hypothesis holds in boundary layer shear flow for those wavenumbers κ such that κŪ≫dŪ/dz. Phase spectral analysis of parallel wind component data at different alongwind locations shows Taylor's hypo... Abstract The application of Taylor's hypothesis to atmospheric boundary layer turbulence at heights of 15, 30 and 58 m has been investigated by correlation analysis and phase-spectral analysis of data taken from lines of meteorological towers when the mean wind direction was essentially along the tower line. The time lag of maximum cross correlation between parallel components measured at different alongwind locations indicates that the eddy structure travels slightly faster than the mean value of the longitudinal wind at the same height. The autocorrelation functions in space and in time for the longitudinal and vertical components show good agreement, as predicted by Talyor's hypothesis, for space lags up to 252 m. The agreement for the lateral component is inferior for lags ≥32 m. According to Lin, Taylor's hypothesis holds in boundary layer shear flow for those wavenumbers κ such that κŪ≫dŪ/dz. Phase spectral analysis of parallel wind component data at different alongwind locations shows Taylor's hypo...Keywords
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