Physics of transitional shear flows : instability and laminar-turbulent transition in incrompressible near-wall shear layers

Starting from fundamentals of classical stability theory, an overview is given of the transition phenomena in subsonic, wall-bounded shear flows. At first, the consideration focuses on elementary small-amplitude velocity perturbations of laminar shear layers, i.e. instability waves, in the simplest...

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Autori principali: Boiko, Andrey V., Dovgal, Alexander V. (Autore), Grek, Genrih R. (Autore), Kozlov, Victor V. (Autore)
Natura: Livre numérique
Lingua:Anglais
Pubblicazione: Dordrecht : Springer Netherlands [20..].
Cham : Springer Nature
Edizione:1st ed. 2012.
Serie:Fluid Mechanics and Its Applications 98
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Nota: Notice rédigée d'aprés la consultation du 2014-03-27
Pagination aprés impression : XXVII-271 p.
Titre provenant de la page de titre du document numérisé
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Edition sous un autre format:• Physics of transitional shear flows, instability and laminar-turbulent transition in incrompressible near-wall shear layers, Andrey V. Boiko, Alexander V. Dovgal, Genrih R. Grek... [et al.], Dordrecht, Springer, 2012, 1 vol. (XXVII-271 p.), Fluid mechanics and its applications, 978-94-007-2497-6
• Physics of Transitional Shear Flows, Texte imprimé, 9789400737112
• Physics of transitional shear flows, instability and laminar-turbulent transition in incrompressible near-wall shear layers, Andrey V. Boiko, Alexander V. Dovgal, Genrih R. Grek... [et al.], Dordrecht, Springer, 2012, 1 vol. (XXVII-271 p.), Fluid mechanics and its applications, 978-94-007-2497-6
• Physics of Transitional Shear Flows, Texte imprimé, 9789400724990
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500 |a Archives Springer e-books (Licence nationale) 
500 |a Archives Springer e-books (Licence nationale) 
504 |a Bibliogr. p. 264-265. Notes bibliogr. Index 
505 1 |a Part I Fundamentals of the linear stability theory :  1 Concept of hydrodynamic stability 1.1 Hydrodynamic stability 1.2 Stability of fluid motion in time 1.2.1 Critical parameters for onset of instability 1.2.2 Conditional stability 1.2.3 Growth of disturbance energy References Further Reading 2 Theoretical aspects : 2.1 Formulation of linear hydrodynamic stability problems 2.1.1 Spectral formulation of stability 2.1.2 Inviscid instability mechanism 2.1.3 Viscous instability mechanism 2.2 Instability in space 2.3 Gaster s transformation 2.4 Squire theorem 2.5 Adjoint problem and bi-orthogonality of normal modes 2.6 Completeness of solutions for the Orr Sommerfeld and Squire equations References Further Reading Part II Generic problems : 3 Instability of plane parallel flows : 3.1 Plane Couette flow 3.2 Plane Poiseuille flow 3.2.1 Numerical results 3.2.2 Experimental linear stability investigations 3.3 Method of linear stability calculations Exercises References Further Reading 4 Instability of the flat-plate boundary layer : 4.1 Historical notes 4.2 Solution of the Orr Sommerfeld equation for the boundary layers 4.3 Nonparallel flow effects 4.3.1 Outline of theoretical approaches to account for nonparallel effects 4.3.2 Modern view on the place and role of nonparallel effects in the Blasius boundary layer Exercises References Further Reading 5 Instabilities of plane flows over curvilinear surfaces: 5.1 Influence of curvature on the basic flow 5.1.1 Equations of motion in cylindrical coordinates 5.1.2 Description of the flow in boundary layers over curvilinear surfaces 5.2 Hydrodynamic instability at curvilinear surfaces 5.2.1 Taylor problem 5.2.2 Dean problem 5.2.3 G ortler problem Exercises References Further Reading 6 Some other basic factors of shear-layer stability: 6.1 Axial flow symmetry 6.2 Two-dimensional geometry 6.3 Transverse flow periodicity 6.4 Pressure gradients 6.4.1 Streamwise pressure gradient 6.4.2 Transverse pressure gradient 
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520 |a Starting from fundamentals of classical stability theory, an overview is given of the transition phenomena in subsonic, wall-bounded shear flows. At first, the consideration focuses on elementary small-amplitude velocity perturbations of laminar shear layers, i.e. instability waves, in the simplest canonical configurations of a plane channel flow and a flat-plate boundary layer. Then the linear stability problem is expanded to include the effects of pressure gradients, flow curvature, boundary-layer separation, wall compliance, etc. related to applications. Beyond the amplification of instability waves is the non-modal growth of local stationary and non-stationary shear flow perturbations which are discussed as well. The volume continues with the key aspect of the transition process, that is, receptivity of convectively unstable shear layers to external perturbations, summarizing main paths of the excitation of laminar flow disturbances. The remainder of the book addresses the instability phenomena found at late stages of transition. These include secondary instabilities and nonlinear features of boundary-layer perturbations that lead to the final breakdown to turbulence. Thus, the reader is provided with a step-by-step approach that covers the milestones and recent advances in the laminar-turbulent transition. Special aspects of instability and transition are discussed through the book and are intended for research scientists, while the main target of the book is the student in the fundamentals of fluid mechanics. Computational guides, recommended exercises, and PowerPoint multimedia notes based on results of real scientific experiments supplement the monograph. These are especially helpful for the neophyte to obtain a solid foundation in hydrodynamic stability. To access the supplementary material go to extras.springer.com and type in the ISBN for this volume 
538 |a Nécessite un lecteur de fichier PDF 
650 |a Turbulence 
650 |a Instabilités hydrodynamiques 
650 |a Écoulement cisaillé 
700 1 |a Dovgal, Alexander V.  |4 aut 
700 1 |a Grek, Genrih R.  |4 aut 
700 1 |a Kozlov, Victor V.  |4 aut 
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