Direct numerical simulation of statistically stationary and homogeneous shear turbulence and its relation to other shear flows
Atsushi Sekimoto, Siwei Dong, Javier Jim\'enez

TL;DR
This paper introduces a new direct numerical simulation method for homogeneous shear turbulence, analyzing how computational box geometry affects turbulence characteristics and comparing findings with other shear flows.
Contribution
It presents a novel simulation approach for SS-HST that avoids remeshing and explores the influence of box geometry on turbulence behavior.
Findings
Spanwise box width determines turbulence scales.
Long boxes can cause unphysical bursts.
Flow shows similarities and differences with wall-bounded turbulence.
Abstract
Statistically stationary and homogeneous shear turbulence (SS-HST) is investigated by means of a new direct numerical simulation code, spectral in the two horizontal directions and compact-finite-differences in the direction of the shear. No remeshing is used to impose the shear-periodic boundary condition. The influence of the geometry of the computational box is explored. Since HST has no characteristic outer length scale and tends to fill the computational domain, long-term simulations of HST are `minimal' in the sense of containing on average only a few large-scale structures. It is found that the main limit is the spanwise box width, , which sets the length and velocity scales of the turbulence, and that the two other box dimensions should be sufficiently large , ) to prevent other directions to be constrained as well. It is also found that…
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