For Computational Fluid Dynamics (CFD) learners or engineers, finding a reference book covering practical daily use is difficult. Some expert CFD books dig deeper into the numerical schemes and modeling techniques, but once you want to apply it to your setup on a specific software or case, you simply cannot make a technical decision about the setup to be chosen.
This book tries to bridge the gap between the deep theoretical book and the daily practical use of CFD. It is certainly important to understand the deep theory of CFD if you want to be an expert in this field, but even experts sometimes have difficulties when facing a new case in CFD.
Focusing on the best practices and providing collections of rules of thumb allows learners and engineers to make educated guesses more rigorously. For example, determining turbulence’s initial and boundary conditions, selecting a turbulent model, estimating the mesh size, selecting scheme and algorithm, and much more.
CONTENTS
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FLUID DYNAMICS FUNDAMENTAL (FLUID FLOW PARAMETERS, GOVERNING EQUATIONS, COMPRESSIBLE, INVISCID)
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MESHING (TYPE, INFLATION, QUALITY, ADAPTIVE & DYNAMIC, OVERSET)
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DOMAIN REDUCTION TECHNIQUES (SYMMETRY, PERIODIC, ROTATING, MOVING REFERENCE)
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COMPUTATIONAL SCHEME (NAVIER STOKE.S TERMS, DENSITY VS PRESSURE BASED, SCALAR TRANSPORT, DISCRETIZATION, PRESSURE-VELOCITY COUPLING, INITIATION, VERIFICATION & VALIDATION)
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BOUNDARY CONDITIONS (DIRICHLET & NEUMANN, WALL, INLET-OUTLET, ENTRAINMENT, PERIODIC, SYMMETRY)
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TURBULENCE MODELING (TURBULENCE THEORY, RANS, SPALART-ALLMARAS, K-e, K-w, LES, HYBRID RANS-LES, WALL FUNCTIONS)
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HEAT TRANSFER
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COMBUSTION & CHEMICAL REACTION
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DISCRETE PHASE
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MULTIPHASE FLOW (VOF, MIXTURE, EULERIAN)
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