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Advancing the State-of-the-Practice for Liquid Rocket Engine Injector DesignCurrent shortcomings in both the overall injector design process and its underlying combustion stability assessment methodology are rooted in the use of empirically based or low fidelity representations of complex physical phenomena and geometry details that have first order effects on performance, thermal environments and combustion stability. The result is a design and analysis capability that is often inadequate to reliably arrive at a suitable injector design in an efficient manner. Specifically, combustion instability has been particularly difficult to predict and mitigate. Large hydrocarbon-fueled booster engines have been especially problematic in this regard. Where combustion instability has been a problem, costly and time-consuming redesign efforts have often been an unfortunate consequence. This paper presents an overview of a recently completed effort at NASA Marshall Space Flight Center to advance the state-of-the-practice for liquid rocket engine injector design. Multiple perturbations of a gas-centered swirl coaxial (GCSC) element that burned gaseous oxygen and RP-1 were designed, assessed for combustion stability, and tested. Three designs, one stable, one marginally unstable and one unstable, were used to demonstrate both an enhanced overall injector design process and an improved combustion stability assessment process. High-fidelity results from state-of-the-art computational fluid dynamics CFD simulations were used to substantially augment and improve the injector design methodology. The CFD results were used to inform and guide the overall injector design process. They were also used to upgrade selected empirical or low-dimensional quantities in the ROCket Combustor Interactive Design (ROCCID) stability assessment tool. Hot fire single element injector testing was used to verify both the overall injector designs and the stability assessments. Testing was conducted at the Air Force Research Laboratory and at Purdue University. Companion papers provide details of the overall injector design process, full- and sub-scale testing, ROCCID-based stability assessments and the CFD simulations.
Document ID
20150016316
Acquisition Source
Marshall Space Flight Center
Document Type
Abstract
Authors
Tucker, P. K.
(NASA Marshall Space Flight Center Huntsville, AL, United States)
Kenny, R. J.
(NASA Marshall Space Flight Center Huntsville, AL, United States)
Richardson, B. R.
(Jacobs Technologies Engineering Science Contract Group Huntsville, AL, United States)
Anderso, W. E.
(Purdue Univ. West Lafayette, IN, United States)
Austin, B. J.
(In Space, LLC Lafayette, IN, United States)
Schumaker, S. A.
(Air Force Research Lab. Wright-Patterson AFB, OH, United States)
Muss, J. A.
(Sierra Engineering, Inc. Carson City, NV, United States)
Date Acquired
August 24, 2015
Publication Date
June 1, 2015
Subject Category
Spacecraft Propulsion And Power
Report/Patent Number
M15-4313
Report Number: M15-4313
Meeting Information
Meeting: JANNAF Joint Propulsion Meeting
Location: Nashville, TN
Country: United States
Start Date: June 1, 2015
End Date: June 5, 2015
Sponsors: Department of the Air Force, Department of the Army, Department of the Navy, NASA Headquarters
Distribution Limits
Public
Copyright
Public Use Permitted.
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