Large-Eddy Simulation of Stably Stratified Atmospheric Boundary Layer Turbulence: A Scale-Dependent Dynamic Modeling Approach
arXiv:physics/0502134 · doi:10.1175/JAS3734.1
Abstract
A new tuning-free subgrid-scale model, termed `locally-averaged scale-dependent dynamic' (LASDD) model, is developed and implemented in large-eddy simulations (LESs) of stable boundary layers. The new model dynamically computes the Smagorinsky coefficient and the subgrid-scale Prandtl number based on the local dynamics of the resolved velocity and temperature fields. Overall, the agreement between the statistics of the LES-generated turbulence and some well-established empirical formulations and theoretical predictions (e.g., Nieuwstadt's local scaling hypothesis) is remarkable. The results show clear improvements over most of the traditional subgrid-scale models in the surface layer. Moreover, in contrast to previous large-eddy simulations of stable boundary layers that have strong dependence on grid resolution, the simulated statistics obtained with the LASDD model show relatively little resolution dependence for the range of grid sizes considered here. In essence, we show that the new LASDD model is a robust subgrid-scale parameterization for reliable, tuning-free simulations of stable boundary layers, even with relatively coarse resolutions.
References in corpus (1)
Cited by in corpus (11)
- Revisiting the Local Scaling Hypothesis in Stably Stratified Atmospheric Boundary Layer Turbulence: an Integration of Field and Laboratory Measurements with Large-eddy Simulations
- Meteorological data for the astronomical site at Dome A, Antarctica
- Addressing the Grid-size Sensitivity Issue in Large-eddy Simulations of Stable Boundary Layers
- Turbulence organization and mean profile shapes in the stably stratified boundary layer: zones of uniform momentum and air temperature
- Parameterizing the Energy Dissipation Rate in Stably Stratified Flows
- Resolvent analysis of stratification effects on wall-bounded shear flows
- A novel approach for deriving the stable boundary layer height and eddy viscosity profiles from the Ekman equations
- On the Dissipation Rate of Temperature Fluctuations in Stably Stratified Flows
- Galilean invariance of shallow cumulus convection large-eddy simulations
- ERF: Energy Research and Forecasting Model
- Comparison of Two Scale-Dependent Dynamic Subgrid-Scale Models for Simulations of Neutrally Buoyant Shear-Driven Atmospheric Boundary Layer Flows