We derive a relation for the growth of the mean square of vertical displacements, δz, of fluid particles of stratified turbulence. In the case of freely decaying turbulence, we find that for large times 〈δz2 〉 goes to a constant value 2(EP (0) + aE(0))/N2, where EP (0) and E(0) are the initial mean potential and total turbulent energy per unit mass, respectively, a < 1 and N is the Brunt–Väisäla ̈ frequency. In the case of stationary turbulence, we find that 〈δz2〉 = 〈δb2〉/N2 + 2P t/N2, where P is the mean dissipation of turbulent potential energy per unit mass and 〈δb2 〉 is the Lagrangian structure function of normalized buoyancy fluctuations. The first term is the same as that obtained in the case of adiabatic fluid particle dispersio...
We consider the one-dimensional case of vertical dispersion in the convective boundary layer (CBL) a...
We present a brief overview of a numerical study of the dispersion of particles in stably stratified...
The dispersion of light inertial particles $\rho_p/\rho_f = \mathcal{O}(1)$ in statistically station...
The vertical dispersion of fluid particles in stably stratified homogeneous turbulence with mean she...
The dispersion of fluid particles in statistically stationary stably stratified turbulence is studie...
We study the effect of different forcing functions and of the local gradient Richardson number Rig o...
The first part is the derivation of one-particle vertical diffusion for stably stratified turbulence...
The dispersion of fluid particles in statistically stationary stably stratified turbulence is studie...
The dispersion of heavy inertial particles in statistically stationary stably stratified turbulence ...
International audienceWe study the statistics of thevertical motion of inertial particles instrongly...
The dispersion of heavy particles in statistically stationary stably stratified turbulence is studie...
We present direct numerical simulations (DNS) of unforced stratified turbulence with the objective o...
Vertical mixing of momentum and heat is investigated in turbulent stratified shear flows. It is assu...
We investigate the large-scale intermittency of vertical velocity and temperature, and the mixing pr...
2012 Fall.Includes bibliographical references.The dynamics and turbulent structures of stably strati...
We consider the one-dimensional case of vertical dispersion in the convective boundary layer (CBL) a...
We present a brief overview of a numerical study of the dispersion of particles in stably stratified...
The dispersion of light inertial particles $\rho_p/\rho_f = \mathcal{O}(1)$ in statistically station...
The vertical dispersion of fluid particles in stably stratified homogeneous turbulence with mean she...
The dispersion of fluid particles in statistically stationary stably stratified turbulence is studie...
We study the effect of different forcing functions and of the local gradient Richardson number Rig o...
The first part is the derivation of one-particle vertical diffusion for stably stratified turbulence...
The dispersion of fluid particles in statistically stationary stably stratified turbulence is studie...
The dispersion of heavy inertial particles in statistically stationary stably stratified turbulence ...
International audienceWe study the statistics of thevertical motion of inertial particles instrongly...
The dispersion of heavy particles in statistically stationary stably stratified turbulence is studie...
We present direct numerical simulations (DNS) of unforced stratified turbulence with the objective o...
Vertical mixing of momentum and heat is investigated in turbulent stratified shear flows. It is assu...
We investigate the large-scale intermittency of vertical velocity and temperature, and the mixing pr...
2012 Fall.Includes bibliographical references.The dynamics and turbulent structures of stably strati...
We consider the one-dimensional case of vertical dispersion in the convective boundary layer (CBL) a...
We present a brief overview of a numerical study of the dispersion of particles in stably stratified...
The dispersion of light inertial particles $\rho_p/\rho_f = \mathcal{O}(1)$ in statistically station...