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Theoretical Models for Wall Injected Duct Flows

Date Issued
May 1, 2010
Author(s)
Saad, Tony
Advisor(s)
Joseph Majdalani
Additional Advisor(s)
Basil N. Antar
Bruce W. Bomar
Boris A. Kupershmidt
Roy J. Schulz
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/28685
Abstract

This dissertation is concerned with the mathematical modeling of the flow in a porous cylinder with a focus on applications to solid rocket motors. After discussing the historical development and major contributions to the understanding of wall injected flows, we present an inviscid rotational model for solid and hybrid rockets with arbitrary headwall injection. Then, we address the problem of pressure integration and find that for a given divergence free velocity field, unless the vorticity transport equation is identically satisfied, one cannot find an analytic expression for the pressure by direct integration of the Navier-Stokes equations. This is followed by the application of a variational procedure to seek novel solutions with varying levels of kinetic energies. These are found to cover a wide spectrum of admissible motions ranging from purely irrotational to highly rotational fields. Subsequently, a second law analysis as well as an extension of Kelvin's energy theorem to open boundaries are presented to verify and corroborate the variational model. Finally, the focus is shifted to address the problem of laminar viscous flow in a porous cylinder with regressing walls. This is tackled using two different analytical techniques, namely, perturbation and decomposition. Comparisons with numerical Runge--Kutta solutions are also provided for a variety of wall Reynolds numbers and wall regression speeds.

Subjects

Fluid Mechanics

Inviscid Flow

Rotational Flow

Variational Solutions...

Solid Rocket Motors

Kelvin's Energy Theor...

Navier-Stokes Equatio...

Disciplines
Aerodynamics and Fluid Mechanics
Fluid Dynamics
Partial Differential Equations
Propulsion and Power
Degree
Doctor of Philosophy
Major
Mechanical Engineering
Embargo Date
December 1, 2011
File(s)
Thumbnail Image
Name

dissertation_Tony_Saad_FINAL.pdf

Size

7.02 MB

Format

Adobe PDF

Checksum (MD5)

6b9e9ac62dfba1b7c4967c4be3bdcc8e


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