Analysis Of The Interaction Of A Weak Normal Shock Wave With A Turbulent Boundary Layer PDF Download

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Analysis of the Interaction of a Weak Normal Shock Wave with a Turbulent Boundary Layer

Analysis of the Interaction of a Weak Normal Shock Wave with a Turbulent Boundary Layer
Author: R. E. Melnik
Publisher:
Total Pages: 34
Release: 1974
Genre:
ISBN:

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The method of matched asymptotic expansions is used to analyze the interaction of a normal shock wave with an unseparated turbulent boundary layer on a flat surface at transonic speeds. The theory leads to a three-layer description of the interaction in the double limit of Reynolds number approaching infinity and Mach number approaching unity. The interaction involves an outer, inviscid rotational layer, a constant shear-stress wall layer, and a blending region between them.


Shock Wave-Boundary-Layer Interactions

Shock Wave-Boundary-Layer Interactions
Author: Holger Babinsky
Publisher: Cambridge University Press
Total Pages: 481
Release: 2011-09-12
Genre: Technology & Engineering
ISBN: 1139498649

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Shock wave-boundary-layer interaction (SBLI) is a fundamental phenomenon in gas dynamics that is observed in many practical situations, ranging from transonic aircraft wings to hypersonic vehicles and engines. SBLIs have the potential to pose serious problems in a flowfield; hence they often prove to be a critical - or even design limiting - issue for many aerospace applications. This is the first book devoted solely to a comprehensive, state-of-the-art explanation of this phenomenon. It includes a description of the basic fluid mechanics of SBLIs plus contributions from leading international experts who share their insight into their physics and the impact they have in practical flow situations. This book is for practitioners and graduate students in aerodynamics who wish to familiarize themselves with all aspects of SBLI flows. It is a valuable resource for specialists because it compiles experimental, computational and theoretical knowledge in one place.


Interaction Between a Normal Shock Wave and a Turbulent Boundary Layer at High Transonic Speeds. Part 1: Pressure Distribution. Part 2: Wall Shear Stress. Part 3: Simplified Formulas for the Prediction of Surface Pressures and Skin Friction

Interaction Between a Normal Shock Wave and a Turbulent Boundary Layer at High Transonic Speeds. Part 1: Pressure Distribution. Part 2: Wall Shear Stress. Part 3: Simplified Formulas for the Prediction of Surface Pressures and Skin Friction
Author:
Publisher:
Total Pages: 144
Release: 1980
Genre:
ISBN:

Download Interaction Between a Normal Shock Wave and a Turbulent Boundary Layer at High Transonic Speeds. Part 1: Pressure Distribution. Part 2: Wall Shear Stress. Part 3: Simplified Formulas for the Prediction of Surface Pressures and Skin Friction Book in PDF, ePub and Kindle


Interaction of a Turbulent Boundary Layer with a Normal Shock Wave Followed by an Adverse Pressure Gradient

Interaction of a Turbulent Boundary Layer with a Normal Shock Wave Followed by an Adverse Pressure Gradient
Author: W. H. Schofield
Publisher:
Total Pages: 12
Release: 1983
Genre: Shock waves
ISBN: 9780642078964

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An experimental study was made of the development of a turbulent boundary layer after an interaction with a normal shock wave (strong enough to cause a local separation) in a strong adverse pressure gradient. This type of flow, which occurs in air breathing engine components (e.g. supersonic intakes, transonic compressor stages and supersonic diffusers), is poorly understood and cannot be satisfactorily predicted. The measurements, made in a closed duct, extended well downstream of the shock wave interaction. Detailed results for the flow are presented and used to support two major conclusions. It is shown that the post shock adverse pressure gradient has a large effect on boundary layer development through the interaction and downstream of it. Consequently existing results for interactions without a post shock pressure gradient should not be used as a model for practical flows which typically have strong pressure gradients applied downstream of the shock wave. The second conclusions was that the shock wave in a rectangular duct produced a pronounced stabilising effect on the downstream flow. Surface flow visualization suggests that this stabilization is achieved by streamwise vortices shed into the flow from the separated region formed by the shock wave. Implications of this result to nominally two-dimensional flow situations and to flows with weak interactions without local separations are discussed.