DocumentCode
3028498
Title
Combustion chamber fluid dynamics and hypergolic gel propellant chemistry simulations for selectable thrust rocket engines
Author
Nusca, Michael J. ; McQuaid, Michael J.
Author_Institution
US Army Res. Lab., Aberdeen Proving Ground, MD, USA
fYear
2004
fDate
7-11 June 2004
Firstpage
180
Lastpage
189
Abstract
The Army is developing gelled bipropellants and tactical missile propulsion systems that utilize these propellants for future combat systems. The use of hypergolic gel propellants introduces new capabilities for selectable thrust missiles while at the same time introducing new challenges in combustion control, one of which is the mixing of oxidizer and fuel to obtain maximum performance without increasing the size of the engine. One of the Army´s leading propulsion candidate´s, the impinging stream vortex engine (ISVE), has generated excellent performance test data. Since the ISVE is a new concept, analytical models are just beginning to emerge. However, in order to fully exploit the performance advantages of the ISVE it is desirable to understand the underlying flow physics of the engine. This paper describes a high performance computing methodology that is producing simulations of the ISVE using computational fluid dynamics to model the chemically reacting flow within the engine and computational chemistry to characterize the hypergolic bipropellants.
Keywords
aerospace propulsion; computational fluid dynamics; missiles; rocket engines; combustion chamber fluid dynamics; computational fluid dynamics; high performance computing methodology; hypergolic gel propellant chemistry simulation; impinging stream vortex engine; rocket engines; tactical missile propulsion system; Chemistry; Combustion; Engines; Fluid dynamics; Fuels; High performance computing; Missiles; Propulsion; Rockets; Size control;
fLanguage
English
Publisher
ieee
Conference_Titel
Users Group Conference (DOD_UGC'04), 2004
Conference_Location
Williamsburg, VA, USA
Print_ISBN
0-7695-2259-9
Type
conf
DOI
10.1109/DOD_UGC.2004.8
Filename
1420868
Link To Document