Fr. 169.00

Angular Momentum in Geophysical Turbulence - Continuum Spatial Averaging Method

English · Paperback / Softback

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Description

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Turbulence theory is one of the most intriguing parts of fluid mechanics and many outstanding scientists have tried to apply their knowledge to the development of the theory and to offer useful recommendations for solution of some practical problems. In this monograph the author attempts to integrate many specific approaches into the unified theory. The basic premise is the simple idea that a small eddy, that is an element of turbulent meso-structure, possesses its own dynamics as an object rotating with its own spin velocity and obeying the Newton dynamics of a finite body. A number of such eddies fills a coordinate cell, and the angular momentum balance has to be formulated for this spatial cell. If the cell coincides with a finite difference element at a numerical calculation and if the external length scale is large, this elementary volume can be considered as a differential one and a continuum parameterization has to be used. Nontrivial angular balance is a consequence of the asymmetrical Reynolds stress action at the oriented sides of an elementary volume. At first glance, the averaged dyad of velocity components is symmetrical, == However, if averaging is performed over the plane with normal nj, the principle of commutation is lost. As a result, the stress tensor asymmetry j is determined by other factors that participate in the angular momentum balance. This is the only possibility to determine a stress in engineering.

List of contents

1. Angular Momentum in a Viscous Fluid.- 2. Space Averaging and Macroequations.- 3. Turbulence as Open Thermodynamic System.- 4. Turbulent Wakes in the Atmosphere.- 5. Geophysical Turbulence.- 6. Vortex Symmetry in Statistical Theory.- 7. Vector-Director Concept in Turbulence.- 8. Literature.- 9. Index.

Summary

Turbulence theory is one of the most intriguing parts of fluid mechanics and many outstanding scientists have tried to apply their knowledge to the development of the theory and to offer useful recommendations for solution of some practical problems. In this monograph the author attempts to integrate many specific approaches into the unified theory. The basic premise is the simple idea that a small eddy, that is an element of turbulent meso-structure, possesses its own dynamics as an object rotating with its own spin velocity and obeying the Newton dynamics of a finite body. A number of such eddies fills a coordinate cell, and the angular momentum balance has to be formulated for this spatial cell. If the cell coincides with a finite­ difference element at a numerical calculation and if the external length scale is large, this elementary volume can be considered as a differential one and a continuum parameterization has to be used. Nontrivial angular balance is a consequence of the asymmetrical Reynolds stress action at the oriented sides of an elementary volume. At first glance, the averaged dyad of velocity components is symmetrical, == However, if averaging is performed over the plane with normal nj, the principle of commutation is lost. As a result, the stress tensor asymmetry j is determined by other factors that participate in the angular momentum balance. This is the only possibility to determine a stress in engineering.

Product details

Authors Victor N Nikolaevskiy, Victor N. Nikolaevskiy
Publisher Springer Netherlands
 
Languages English
Product format Paperback / Softback
Released 07.10.2010
 
EAN 9789048164783
ISBN 978-90-481-6478-3
No. of pages 245
Dimensions 159 mm x 15 mm x 238 mm
Weight 449 g
Illustrations IX, 245 p.
Subjects Natural sciences, medicine, IT, technology > Geosciences > Geology

B, Geophysics, Earth and Environmental Science, Earth Sciences, Oceanography, Ocean Sciences, Maths for engineers, Mathematical modelling, Geophysics/Geodesy, Atmospheric Sciences, Mathematical Modeling and Industrial Mathematics, Mathematical models, Oceanography (seas), Atmospheric Science, Ocean;Scale;Tornado;fluid mechanics;mechanics;wind

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