Mixing enhancement in coaxial jets through inflow forcing: A numerical study
From MaRDI portal
Publication:5303311
DOI10.1063/1.2747680zbMath1182.76047OpenAlexW2056679084MaRDI QIDQ5303311
Olivier Métais, Marcel Lesieur, Guillaume Balarac
Publication date: 18 March 2010
Published in: Physics of Fluids (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1063/1.2747680
Related Items (4)
Effects of molecular diffusion on the subgrid-scale modeling of passive scalars ⋮ Coherent structures and their frequency signature in the separated shear layer on the sides of a square cylinder ⋮ Direct numerical simulation of subsonic round turbulent jet ⋮ Non-modal analysis of coaxial jets
Cites Work
- Unnamed Item
- Low-storage Runge-Kutta schemes
- Compact finite difference schemes with spectral-like resolution
- A simple boundary condition for unbounded hyperbolic flows
- Noise investigation of a high subsonic, moderate Reynolds number jet using a compressible large eddy simulation
- On coherent-vortex identification in turbulence
- A study of the flow-field evolution and mixing in a planar turbulent jet using direct numerical simulation
- Vortex control in large-eddy simulations of compressible round jets
- Direct numerical simulations of high velocity ratio coaxial jets: mixing properties and influence of upstream conditions
- Direct numerical simulation of bifurcating jets
- The near field of coaxial jets: A numerical study
- Vortex control of bifurcating jets: A numerical study
- The instability of short waves on a vortex ring
- Spreading characteristics of compressible jets from nozzles of various geometries
- On the influence of coherent structures upon interscale interactions in turbulent plane jets
- B<scp>IFURCATING AND</scp> B<scp>LOOMING</scp> J<scp>ETS</scp>
- On the use of microjets to suppress turbulence in a Mach 0.9 axisymmetric jet
- Mixing in coaxial jets
- Large-Eddy Simulations of Turbulence
This page was built for publication: Mixing enhancement in coaxial jets through inflow forcing: A numerical study