Theoretical and Experimental Modeling of Vortex Engine in Ramjet Application
Somayeh B. Shafiei, Akbar Ghafourian, Mohammad Hasan Saidi, A. Mozafari
Abstract
Somayeh B. Shafiei, Akbar Ghafourian, Mohammad Hasan Saidi, A. Mozafari
Abstract
A new experimental facility was designed, fabricated and tested to model and study the possibility of applying the bidirectional swirl flow on the combustion chamber of airbreathing subsonic ramjet engine. Appropriate intake was designed to convert axial external air to tangential swirl flow inside the combustion chamber. Inlets with appropriate angles conduct the swirl flow into the chamber and create bidirectional swirl flow field in the combustion chamber. This flow field has been modeled theoretically to determine the velocity field characteristics by previous researchers. Bidirectional swirl flow in liquid fuel ramjet engines has the proven advantage of keeping the combustion chamber walls cool and in solid fuel ramjet engines increases the fuel burning rate as demonstrated in the previous investigations. The experimental study was performed by using propane and air as fuel and oxidizer, respectively. The temperature of combustion chamber wall was measured and found to be as low as 100 . The possibility of combining the airbreathing bidirectional swirl flow and ramjet engine was proved experimentally. The temperature variations at 3 points of the combustion chamber wall of this airbreathing bidirectional swirl flow engine were measured relative to time. The temperature variations on the same three points relative to various mass fuel air ratios were measured and are reported. Further development of this type of combustion chamber enables manufacturers to use less expensive and more available material in their production of combustors with improved combustion efficiency due to the increased mixing rate and cooled combustion chamber wall.
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A new experimental facility was designed, fabricated and tested to model and study the possibility of applying the bidirectional swirl flow on the combustion chamber of airbreathing subsonic ramjet engine. Appropriate intake was designed to convert axial external air to tangential swirl flow inside the combustion chamber. Inlets with appropriate angles conduct the swirl flow into the chamber and create bidirectional swirl flow field in the combustion chamber. This flow field has been modeled theoretically to determine the velocity field characteristics by previous researchers. Bidirectional swirl flow in liquid fuel ramjet engines has the proven advantage of keeping the combustion chamber walls cool and in solid fuel ramjet engines increases the fuel burning rate as demonstrated in the previous investigations. The experimental study was performed by using propane and air as fuel and oxidizer, respectively. The temperature of combustion chamber wall was measured and found to be as low as 100 . The possibility of combining the airbreathing bidirectional swirl flow and ramjet engine was proved experimentally. The temperature variations at 3 points of the combustion chamber wall of this airbreathing bidirectional swirl flow engine were measured relative to time. The temperature variations on the same three points relative to various mass fuel air ratios were measured and are reported. Further development of this type of combustion chamber enables manufacturers to use less expensive and more available material in their production of combustors with improved combustion efficiency due to the increased mixing rate and cooled combustion chamber wall.
Key concepts: Ramjet, Combustion chamber, Combustor, Combustion, Mechanics, Aerospace engineering, Materials science, Flow (mathematics)