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Parametric (On-Design) Cycle Analysis for a Separate-Exhaust Turbofan Engine With Interstage Turbine BurnerToday s modern aircraft is based on air-breathing jet propulsion systems, which use moving fluids as substances to transform energy carried by the fluids into power. Throughout aero-vehicle evolution, improvements have been made to the engine efficiency and pollutants reduction. The major advantages associated with the addition of ITB are an increase in thermal efficiency and reduction in NOx emission. Lower temperature peak in the main combustor results in lower thermal NOx emission and lower amount of cooling air required. This study focuses on a parametric (on-design) cycle analysis of a dual-spool, separate-flow turbofan engine with an Interstage Turbine Burner (ITB). The ITB considered in this paper is a relatively new concept in modern jet engine propulsion. The ITB serves as a secondary combustor and is located between the high- and the low-pressure turbine, i.e., the transition duct. The objective of this study is to use design parameters, such as flight Mach number, compressor pressure ratio, fan pressure ratio, fan bypass ratio, and high-pressure turbine inlet temperature to obtain engine performance parameters, such as specific thrust and thrust specific fuel consumption. Results of this study can provide guidance in identifying the performance characteristics of various engine components, which can then be used to develop, analyze, integrate, and optimize the system performance of turbofan engines with an ITB. Visual Basic program, Microsoft Excel macrocode, and Microsoft Excel neuron code are used to facilitate Microsoft Excel software to plot engine performance versus engine design parameters. This program computes and plots the data sequentially without forcing users to open other types of plotting programs. A user s manual on how to use the program is also included in this report. Furthermore, this stand-alone program is written in conjunction with an off-design program which is an extension of this study. The computed result of a selected design-point engine will be exported to an engine reference data file that is required in off-design calculation.
Document ID
20050207442
Acquisition Source
Glenn Research Center
Document Type
Technical Memorandum (TM)
Authors
Liew, K. H.
(Michigan Technological Univ. Houghton, MI, United States)
Urip, E.
(Michigan Technological Univ. Houghton, MI, United States)
Yang, S. L.
(Michigan Technological Univ. Houghton, MI, United States)
Siow, Y. K.
(Michigan Technological Univ. Houghton, MI, United States)
Marek, C. J.
(NASA Glenn Research Center Cleveland, OH, United States)
Date Acquired
September 7, 2013
Publication Date
July 1, 2005
Subject Category
Aircraft Propulsion And Power
Report/Patent Number
E-15148
NASA/TM-2005-213658
Report Number: E-15148
Report Number: NASA/TM-2005-213658
Funding Number(s)
CONTRACT_GRANT: NAG3-2088
WBS: WBS 22-066-10-12
Distribution Limits
Public
Copyright
Public Use Permitted.
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