Search NASASearch

NASA NTRS · 19950002776

Computational Fluid Dynamic Modeling of Rocket Based Combined Cycle Engine Flowfields

Abstract

Computational Fluid Dynamic techniques are used to study the flowfield of a fixed geometry Rocket Based Combined Cycle engine operating in rocket ejector mode. Heat addition resulting from the combustion of injected fuel causes the subsonic engine flow to choke and go supersonic in the slightly divergent combustor-mixer section. Reacting flow computations are undertaken to predict the characteristics of solutions where the heat addition is determined by the flowfield. Here, adaptive gridding is used to improve resolution in the shear layers. Results show that the sonic speed is reached in the unheated portions of the flow first, while the heated portions become supersonic later. Comparison with results from another code show reasonable agreement. The coupled solutions show that the character of the combustion-based thermal choking phenomenon can be controlled reasonably well such that there is opportunity to optimize the length and expansion ratio of the combustor-mixer.

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Daines, Russell L., Merkle, Charles L.. 1994-11-01. Computational Fluid Dynamic Modeling of Rocket Based Combined Cycle Engine Flowfields. https://ntrs.nasa.gov/citations/19950002776

Cite the original work for its findings. Save a collection to share your selection of sources.