The role of thermal stratification on the co-spectral properties of momentum transport above an Amazonian forest
The influence of thermal stratification on the turbulent kinetic energy balance has been widely studied; however, its influence on the turbulent stress remains less explored in the presence of tall vegetated canopies and less ideal micrometeorological conditions. Here, the impact of thermal stratification on turbulent momentum flux is considered in the roughness sublayer (RSL) and the atmospheric surface layer (ASL) using the Amazon Tall Tower Observatory (ATTO) in Brazil. A scalewise co-spectral budget (CSB) model is developed using standard closure schemes for the pressure–velocity decorrelation. The CSB revealed that the co-spectrum (Formula presented.) between longitudinal ((Formula presented.)) and vertical ((Formula presented.)) velocity fluctuations is impacted by the energy spectrum of the vertical velocity (Formula presented.) and the much less studied longitudinal heat-flux co-spectrum (Formula presented.), where (Formula presented.) are temperature fluctuations and (Formula presented.) is the longitudinal wavenumber. Under stable, very stable, and dynamic–convective conditions, the scaling exponent in (Formula presented.) for the inertial subrange (ISR) scales is dominated by (Formula presented.) instead of (Formula presented.). A near (Formula presented.) scaling in (Formula presented.) robust to large variations in thermal stratification is found, whereas the Kolmogorov ISR scaling for (Formula presented.) is not found. The scale-dependent decorrelation time between (Formula presented.) and (Formula presented.) is dominated by (Formula presented.) in the ISR, but is nearly constant for eddies larger than the vertical velocity integral scale, regardless of stability. Implications of these findings for generalized stability correction functions that are based on the turbulent stress budget instead of the turbulent kinetic energy budget are discussed.
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- Meteorology & Atmospheric Sciences
- 3701 Atmospheric sciences
- 0406 Physical Geography and Environmental Geoscience
- 0405 Oceanography
- 0401 Atmospheric Sciences
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Published In
DOI
EISSN
ISSN
Publication Date
Related Subject Headings
- Meteorology & Atmospheric Sciences
- 3701 Atmospheric sciences
- 0406 Physical Geography and Environmental Geoscience
- 0405 Oceanography
- 0401 Atmospheric Sciences