
Energy Deposition for High-Speed Flow Control
Doyle D. Knight(Author)
Cambridge University Press
Published on 21. February 2019
Book
Hardback
462 pages
978-1-107-12305-2 (ISBN)
Description
Written by a leading expert in the field, this book presents a novel method for controlling high-speed flows past aerodynamic shapes using energy deposition via direct current (DC), laser or microwave discharge, and describes selected applications in supersonic and hypersonic flows. Emphasizing a deductive approach, the fundamental physical principles provided give an understanding of the simplified mathematical models derived therefrom. These features, along with an extensive set of 55 simulations, make the book an invaluable reference that will be of interest to researchers and graduate students working in aerospace engineering and in plasma physics.
More details
Series
Language
English
Place of publication
Cambridge
United Kingdom
Target group
Professional and scholarly
Product notice
sewn/stitched
Cloth over boards
Illustrations
164 Halftones, black and white; 347 Line drawings, black and white
Dimensions
Height: 261 mm
Width: 184 mm
Thickness: 27 mm
Weight
1097 gr
ISBN-13
978-1-107-12305-2 (9781107123052)
Copyright in bibliographic data and cover images is held by Nielsen Book Services Limited or by the publishers or by their respective licensors: all rights reserved.
Schweitzer Classification
Other editions
Additional editions

Doyle D. Knight
Energy Deposition for High-Speed Flow Control
E-Book
02/2019
Cambridge University Press
€160.99
Available for download
Person
Doyle D. Knight is Distinguished Professor of Aerospace and Mechanical Engineering at Rutgers - The State University of New Jersey. His research interests include gas dynamics and design optimization. His research in gas dynamics includes shock wave boundary layer interaction, incipient separation on pitching airfoils, turbulence model development, high speed inlet unstart and effects of unsteady energy deposition in supersonic flows. His research activity in design optimization focuses on the application of computational fluid dynamics to the automated optimal design of high speed air vehicles. He is the author of Elements of Numerical Methods for Compressible Flows, Cambridge University Press, 2006.
Content
1. Introduction; 2. Fundamental equations; 3. Statistical mechanics and continuum physics; 4. Dynamics and kinetics pacetoken of charged particles; 5. DC discharge; 6. Microwave discharge; 7. Laser discharge; 8. Modeling energy deposition pacetoken as an ideal gas; 9. Flow control in aerodynamics.