The role of active Navier–Stokes angular momentum in identifying small-scale turbulence behavior
Abstract
This work investigates the role of an active Navier–Stokes angular term, inherent in micropolar theory, in characterizing small-scale turbulence behavior. By incorporating the micropolar viscosity ratio m, a modified Navier–Stokes equation is derived that allows for fine-tuning of small-scale turbulence intensity without changing the bulk flow properties. Direct numerical simulations of turbulent micropolar Poiseuille flow show that increased m intensifies the near-wall turbulence and enhances dissipation of turbulent kinetic energy, particularly within the viscous sublayer. The decisive role of small-scale structures in micropolar flows is further enhanced here by the analysis of helicity, where acceleration of velocity–vorticity alignment is observed. The outcome underlines the potential of a micropolar model in advancing studies and modeling of turbulence.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (4)
George Sofiadis
Department of Civil Engineering, University of Thessaly 1 , Pedion Areos, 38334 Volos,
Mikael Mortensen
Department of Mathematics, University of Oslo 2 , Moltke Moes vei 35, 0851 Oslo,
Ioannis E. Sarris
Department of Mechanical Engineering, University of West Attica 3 , 12244 Athens,
Antonios Liakopoulos
Department of Civil Engineering, University of Thessaly 1 , Pedion Areos, 38334 Volos,