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| Content Provider | The American Society of Mechanical Engineers (ASME) Digital Collection |
|---|---|
| Author | Kunz, R. F. Lakshminarayana, B. |
| Copyright Year | 1991 |
| Abstract | An explicit, three-dimensional, coupled Navier-Stokes/k-ε technique has been developed and successfully applied to complex internal flow calculations. Several features of the procedure, which enable convergent and accurate calculation of high Reynolds number two-dimensional cascade flows have been extended to three-dimensions, including a low Reynolds number compressible form of the k-ε turbulence model, local timestep specification based on hyperbolic and parabolic stability requirements, and eigenvalue and local velocity scaling of artificial dissipation operators. A flux evaluation procedure which eliminates the finite difference metric singularity, at leading and trailing edges, on H- and C-grids, is presented. The code is used to predict the pressure distribution, primary velocity and secondary flows in an incompressible, turbulent curved duct flow for which CFD validation quality data is available. Also, a subsonic compressor rotor passage, for which detailed laser, rotating hot-wire and five-hole pressure probe measurements have been made is computed. Detailed comparisons between predicted and measured core flow and near wall velocity profiles, wake profiles, and spanwise mixing effects downstream of the rotor passage are presented for this case. It is found that the technique provides accurate and convergent engineering simulation of these complex turbulent flows. |
| Sponsorship | International Gas Turbine Institute |
| File Format | |
| ISBN | 9780791878989 |
| DOI | 10.1115/91-GT-146 |
| Volume Number | Volume 1: Turbomachinery |
| Conference Proceedings | ASME 1991 International Gas Turbine and Aeroengine Congress and Exposition |
| Language | English |
| Publisher Date | 1991-06-03 |
| Publisher Place | Orlando, Florida, USA |
| Access Restriction | Open |
| Subject Keyword | Turbulence Stability Computational fluid dynamics Cascades (fluid dynamics) Ducts Reynolds number Rotors Turbomachinery Dimensions Compressors Wire Flow (dynamics) Pressure Internal flow Computation Energy dissipation Lasers Eigenvalues Wakes Engineering simulation Probes |
| Content Type | Text |
| Resource Type | Article |
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