k-omega model

The k-omega model describes the turbulent velocity as a function of the kinetic energy, its specific dissipation rate, as well as the density of the fluid. Learn how the flow solver uses it to model turbulent flows.

With the standard k-ω turbulence model, the turbulent viscosity is given by:

  • k is the turbulent kinetic energy.
  • ω is the specific dissipation rate of the turbulent kinetic energy.
  • ρ is the density of the fluid.

The turbulent kinetic energy, k, and the specific dissipation rate of turbulent kinetic energy, ω, are obtained by solving a conservation equation for each of these two quantities given by:

In these equations:

  • Γk is the effective diffusion coefficient of k:

  • Γω is the effective diffusion coefficient of ω is:

  • Pk is the production rate of turbulent kinetic energy:

  • The quantity β is defined as β = β0fβ where:

  • The quantity β* is defined as β* = β*0fβ* where:

  • The strain rate Sij and vorticity Ωij are defined as follows:

  • The constants in these equations are: