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Validation of a Solid Rocket Motor Internal Environment ModelIn a prior effort, a thermal/fluid model of the interior of Penn State University's laboratory-scale Insulation Test Motor (ITM) was constructed to predict both the convective and radiative heat transfer to the interior walls of the ITM with a minimum of empiricism. These predictions were then compared to values of total and radiative heat flux measured in a previous series of ITM test firings to assess the capabilities and shortcomings of the chosen modeling approach. Though the calculated fluxes reasonably agreed with those measured during testing, this exercise revealed means of improving the fidelity of the model to, in the case of the thermal radiation, enable direct comparison of the measured and calculated fluxes and, for the total heat flux, compute a value indicative of the average measured condition. By replacing the P1-Approximation with the discrete ordinates (DO) model for the solution of the gray radiative transfer equation, the radiation intensity field in the optically thin region near the radiometer is accurately estimated, allowing the thermal radiation flux to be calculated on the heat-flux sensor itself, which was then compared directly to the measured values. Though the fully coupling the wall thermal response with the flow model was not attempted due to the excessive computational time required, a separate wall thermal response model was used to better estimate the average temperature of the graphite surfaces upstream of the heat flux gauges and improve the accuracy of both the total and radiative heat flux computations. The success of this modeling approach increases confidence in the ability of state-of-the-art thermal and fluid modeling to accurately predict SRM internal environments, offers corrections to older methods, and supplies a tool for further studies of the dynamics of SRM interiors.
Document ID
20170005375
Acquisition Source
Marshall Space Flight Center
Document Type
Abstract
Authors
Martin, Heath T.
(NASA Marshall Space Flight Center Huntsville, AL, United States)
Date Acquired
June 7, 2017
Publication Date
May 22, 2017
Subject Category
Spacecraft Propulsion And Power
Fluid Mechanics And Thermodynamics
Report/Patent Number
M17-5821
Report Number: M17-5821
Meeting Information
Meeting: JANNAF Propulsion Meeting
Location: Kansas City, MO
Country: United States
Start Date: May 22, 2017
End Date: May 25, 2017
Sponsors: Department of the Air Force, NASA Headquarters, Department of the Navy, Department of the Army
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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