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Mach Wave and Acoustical Wave Structure in Nonequilibrium Gas-Particle Flows.

Mach Wave and Acoustical Wave Structure in Nonequilibrium Gas-Particle Flows.

・ISBN 978-1-108-96488-3 paper GB£ 18.00

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電子版あり 大学・学術機関向け電子ブック(eBook)ISBN 978-1-108-99058-5
著者・編者Liu, Joseph T. C.,
シリーズ (Elements in Aerospace Engineering)
出版社 (Cambridge University Press, UK)
出版年月2021
ページ数78 pp.
言語ENG
ニュース番号<A00-9565>

解説

In this Element, the gas-particle flow problem is formulated with momentum and thermal slip that introduces two relaxation times. Starting from acoustical propagation in a medium in equilibrium, the relaxation-wave equation in airfoil coordinates is derived though a Galilean transformation for uniform flow. Steady planar small perturbation supersonic flow is studied in detail according to Whitham's higher-order waves. The signals owing to wall boundary conditions are damped along the frozen-Mach wave, and are both damped and diffusive along an effective-intermediate Mach wave and diffusive along the equilibrium Mach wave where the bulk of the disturbance propagates. The surface pressure coefficient is obtained exactly for small-disturbance theory, but it is considerably simplified for the small particle-to-gas mass loading approximation, equivalent to a simple-wave approximation. Other relaxation-wave problems are discussed. Martian dust-storm properties in terms of gas-particle flow parameters are estimated.