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Modeling the Gas Dynamics Environment in a Subscale Solid Rocket Test MotorSubscale test motors are often used for the evaluation of solid rocket motor component materials such as internal insulation. These motors are useful for characterizing insulation performance behavior, screening insulation material candidates and obtaining material thermal and ablative property design data. One of the primary challenges associated with using subscale motors however, is the uncertainty involved when extrapolating the results to full-scale motor conditions. These uncertainties are related to differences in such phenomena as turbulent flow behavior and boundary layer development, propellant particle interactions with the wall, insulation off-gas mixing and thermochemical reactions with the bulk flow, radiation levels, material response to the local environment, and other anomalous flow conditions. In addition to the need for better understanding of physical mechanisms, there is also a need to better understand how to best simulate these phenomena using numerical modeling approaches such as computational fluid dynamics (CFD). To better understand and model interactions between major phenomena in a subscale test motor, a numerical study of the internal flow environment of a representative motor was performed. Simulation of the environment included not only gas dynamics, but two-phase flow modeling of entrained alumina particles like those found in an aluminized propellant, and offgassing from wall surfaces similar to an ablating insulation material. This work represents a starting point for establishing the internal environment of a subscale test motor using comprehensive modeling techniques, and lays the groundwork for improving the understanding of the applicability of subscale test data to full-scale motors. It was found that grid resolution, and inclusion of phenomena in addition to gas dynamics, such as two-phase and multi-component gas composition are all important factors that can effect the overall flow field predictions.
Document ID
20020030027
Acquisition Source
Marshall Space Flight Center
Document Type
Other
Authors
Eaton, Andrew M.
(ATK-Thiokol Propulsion Brigham City, UT United States)
Ewing, Mark E.
(ATK-Thiokol Propulsion Brigham City, UT United States)
Bailey, Kirk M.
(ATK-Thiokol Propulsion Brigham City, UT United States)
McCool, Alex
Date Acquired
September 7, 2013
Publication Date
January 1, 2001
Subject Category
Spacecraft Propulsion And Power
Report/Patent Number
AIAA Paper 2001-3584
Report Number: AIAA Paper 2001-3584
Meeting Information
Meeting: 37th AIAA/ASME/SAE/ASEE Joint Propulsion Conference and Exhibit
Location: Salt Lake City, UT
Country: United States
Start Date: July 8, 2001
End Date: July 11, 2001
Sponsors: American Inst. of Aeronautics and Astronautics, Society of Automotive Engineers, Inc., American Society of Mechanical Engineers, American Society for Electrical Engineers
Funding Number(s)
CONTRACT_GRANT: NAS8-38100
Distribution Limits
Public
Copyright
Public Use Permitted.
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