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A New Hypothesis on the Anisotropic Reynolds Stress Tensor for Turbulent Flows


Menge:  Stück  
Produktinformationen
cover
cover
Artikel-Nr.:
     5667A-9783030606053
Hersteller:
     Springer Verlag
Herst.-Nr.:
     9783030606053
EAN/GTIN:
     9783030606053
Suchbegriffe:
Chemische Technik
Chemische Technik - englischsprachi...
allgemeine Technikbücher
allgemeine Technikbücher - englisch...
This self-contained, interdisciplinary book encompasses mathematics, physics, computer programming, analytical solutions and numerical modelling, industrial computational fluid dynamics (CFD), academic benchmark problems and engineering applications in conjunction with the research field of anisotropic turbulence. It focuses on theoretical approaches, computational examples and numerical simulations to demonstrate the strength of a new hypothesis and anisotropic turbulence modelling approach for academic benchmark problems and industrially relevant engineering applications. This book contains MATLAB codes, and C programming language based User-Defined Function (UDF) codes which can be compiled in the ANSYS-FLUENT environment. The computer codes help to understand and use efficiently a new concept which can also be implemented in any other software packages. The simulation results are compared to classical analytical solutions and experimental data taken from the literature. A particular attention is paid to how to obtain accurate results within a reasonable computational time for wide range of benchmark problems. The provided examples and programming techniques help graduate and postgraduate students, engineers and researchers to further develop their technical skills and knowledge.
Weitere Informationen:
Author:
László Könözsy
Verlag:
Springer International Publishing
Sprache:
eng
Weitere Suchbegriffe: chemische technik - englischsprachig, Anisotropic Reynolds stress tensor, Beyond the Boussinesq hypothesis, Three-dimensional wall-bounded turbulent shear flows, Three-dimensional boundary layer and shear flows, External turbulent flows and separation, Full aircraft simulation, Anisotropic Reynolds stress distribution, Similarity theory and its computation, Hybrid k-omega SST turbulence models, Reliability of advanced turbulence models, fluid- and aerodynamics
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