A platform for research: civil engineering, architecture and urbanism
Bulk Flow Parameterization of Temporally Evolving Turbulent Stratified Open Channel Flow Subject to Radiative Heating
The transient response of an initially neutral turbulent open channel subject to sudden stable stratification through radiative surface heating is investigated through direct numerical simulations. We find the convergence of the vertical buoyancy and momentum fluxes toward their respective analytical equilibrium values to be a global monotonic process such that locally, buoyancy and momentum flux equilibrium is obtained simultaneously at all locations within the channel. We present scaling arguments to show that the evolution of the flux convergence ratios toward equilibrium scale directly with and reach equilibrium at , consistent with results from the literature, where is the friction Richardson number, is the friction time scale, and is the measured time from the initial isothermal state. We define the upper laminar layer thickness and present scaling arguments to show that the laminar layer thickness is well-parameterized by a hybrid bulk parameter such that across the full external parameter set. Here is the channel height, is the equilibrium convergence ratio, is the molecular Prandtl number, and is the friction Reynolds number.
Bulk Flow Parameterization of Temporally Evolving Turbulent Stratified Open Channel Flow Subject to Radiative Heating
The transient response of an initially neutral turbulent open channel subject to sudden stable stratification through radiative surface heating is investigated through direct numerical simulations. We find the convergence of the vertical buoyancy and momentum fluxes toward their respective analytical equilibrium values to be a global monotonic process such that locally, buoyancy and momentum flux equilibrium is obtained simultaneously at all locations within the channel. We present scaling arguments to show that the evolution of the flux convergence ratios toward equilibrium scale directly with and reach equilibrium at , consistent with results from the literature, where is the friction Richardson number, is the friction time scale, and is the measured time from the initial isothermal state. We define the upper laminar layer thickness and present scaling arguments to show that the laminar layer thickness is well-parameterized by a hybrid bulk parameter such that across the full external parameter set. Here is the channel height, is the equilibrium convergence ratio, is the molecular Prandtl number, and is the friction Reynolds number.
Bulk Flow Parameterization of Temporally Evolving Turbulent Stratified Open Channel Flow Subject to Radiative Heating
J. Hydraul. Eng.
Issaev, Vassili (author) / Armfield, Steven W. (author) / Williamson, Nicholas (author)
2025-01-01
Article (Journal)
Electronic Resource
English
k-epsilon modeling of vertical mass transport in turbulent stratified open-channel flow
British Library Conference Proceedings | 2005
|Turbulent open-channel flow with upward
British Library Online Contents | 1998
|Large flow structures in a turbulent open channel flow
British Library Online Contents | 1999
|Open-channel turbulent flow through bar racks
British Library Online Contents | 2014
|