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

By: (Author) Joseph T. C. Liu

Manufacture on Demand

Ksh 3,250.00

Format: Paperback / Softback

ISBN-10: 1108964885

ISBN-13: 9781108964883

Series: Elements in Aerospace Engineering

Publisher: Cambridge University Press

Imprint: Cambridge University Press

Country of Manufacture: GB

Country of Publication: GB

Publication Date: Oct 7th, 2021

Print length: 75 Pages

Weight: 126 grams

Dimensions (height x width x thickness): 15.20 x 22.90 x 1.00 cms

Product Classification: Aerospace & aviation technology

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Gas-particle flows became relevant in Aerospace Engineering owing to small solid particle additives to alleviate acoustical instabilities in solid propellant rocket motors, thereby motivating the study of a variety of nonlinear and linear waves. Emphasis is placed on fundamental aspects of the relaxation nature of the flow processes.
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.

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