Lagrangian studies in convective turbulence
Joerg Schumacher

TL;DR
This study uses high-resolution simulations to analyze the Lagrangian properties of turbulent Rayleigh-Benard convection, revealing inhomogeneous dispersion, plume dynamics, and acceleration statistics, with implications for understanding turbulent heat transfer.
Contribution
It provides detailed Lagrangian analysis of convective turbulence, including dispersion, multiparticle statistics, and acceleration, highlighting differences from homogeneous turbulence and insights into plume behavior.
Findings
Dispersion depends on initial position and separation.
Short-range Richardson-like scaling observed.
Vertical acceleration less intermittent than lateral.
Abstract
We present high-resolution direct numerical simulations of turbulent three-dimensional Rayleigh-Benard convection with a focus on the Lagrangian properties of the flow. The volume is a Cartesian slab with an aspect ratio of four bounded by free-slip planes at the top and bottom and with periodic side walls. The turbulence is inhomogeneous with respect to the vertical direction. This manifests in different lateral and vertical two-particle dispersion and in a dependence of the dispersion on the initial tracer position for short and intermediate times. Similar to homogeneous isotropic turbulence, the dispersion properties depend in addition on the initial pair separation and yield a short-range Richardson-like scaling regime of two-particle dispersion for initial separations close to the Kolmogorov dissipation length. The Richardson constant is about half the value of homogeneous…
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