The primary accomplishments of the project were as follows: (1) From an overall standpoint, the primary accomplishment of this research was the development of a complete gasdynamic-radiatively coupled nonequilibrium viscous shock layer solution method for axisymmetric blunt bodies. This method can be used for rapid engineering modeling of nonequilibrium re-entry flowfields over a wide range of conditions. (2) Another significant accomplishment was the development of an air radiation model that included local thermodynamic nonequilibrium (LTNE) phenomena. (3) As part of this research, three electron-electronic energy models were developed. The first was a quasi-equilibrium electron (QEE) model which determined an effective free electron temp...
Research was performed in the area of computational modeling and application of hypersonic, high-ent...
A method for predicting radiation adsorption and emission coefficients in thermochemical nonequilibr...
Radiative transfer, chemical nonequilibrium, and two temperature effects behind reflected shock wave...
The following subject areas are covered: the development of detailed nonequilibrium radiation models...
The period from Jan. 1993 thru Aug. 1993 is covered. The primary tasks during this period were the d...
The primary tasks performed are: (1) the development of a second order local thermodynamic nonequili...
The continued development and improvement of the viscous shock layer (VSL) nonequilibrium chemistry ...
A technique was developed for predicting the character and magnitude of the shock wave precursor ahe...
This final report will attempt to concisely summarize the activities and accomplishments associated ...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/76510/1/AIAA-711-172.pd
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/77102/1/AIAA-1994-2415-101.pd
The purpose of this research was to develop a highly accurate computational method for calculating t...
In this grant period, the focus has been on the effects of thermo-chemical nonequilibrium in low-den...
The project focuses on diatomic gases with vibrational and electronic mode disequilibrium, environme...
The present understanding of shock-layer radiation in the low density regime, as appropriate to hype...
Research was performed in the area of computational modeling and application of hypersonic, high-ent...
A method for predicting radiation adsorption and emission coefficients in thermochemical nonequilibr...
Radiative transfer, chemical nonequilibrium, and two temperature effects behind reflected shock wave...
The following subject areas are covered: the development of detailed nonequilibrium radiation models...
The period from Jan. 1993 thru Aug. 1993 is covered. The primary tasks during this period were the d...
The primary tasks performed are: (1) the development of a second order local thermodynamic nonequili...
The continued development and improvement of the viscous shock layer (VSL) nonequilibrium chemistry ...
A technique was developed for predicting the character and magnitude of the shock wave precursor ahe...
This final report will attempt to concisely summarize the activities and accomplishments associated ...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/76510/1/AIAA-711-172.pd
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/77102/1/AIAA-1994-2415-101.pd
The purpose of this research was to develop a highly accurate computational method for calculating t...
In this grant period, the focus has been on the effects of thermo-chemical nonequilibrium in low-den...
The project focuses on diatomic gases with vibrational and electronic mode disequilibrium, environme...
The present understanding of shock-layer radiation in the low density regime, as appropriate to hype...
Research was performed in the area of computational modeling and application of hypersonic, high-ent...
A method for predicting radiation adsorption and emission coefficients in thermochemical nonequilibr...
Radiative transfer, chemical nonequilibrium, and two temperature effects behind reflected shock wave...