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Understanding and Controlling Hybrid Electric Gas Turbine Engine Transient DynamicsThe electrification of the gas turbine engine is known to increase the flexibility of aircraft architectures by enabling the generation of electrical power to distribute to other electrically based, thrust producing subsystems. It also has potential for direct performance benefits in the gas turbine engine itself, both at steady state and dynamically. Although the design focus of the gas turbine engine performance is primarily at steady state, it is often the instabilities occurring during transients that cause disequilibrium and constrain performance improvements. Instabilities arise due to the disequilibrium of the energy storage mechanisms within the traditional engine system and likewise for the electrified engine system. The primary energy storage mechanisms in the traditional system are the rotational inertia, gas path volumes, the thermal masses that make up the mechanical structure, and now, the electrical power system will provide additional contributions. Understanding the effect each of these energy storage mechanisms has on the others and controlling them appropriately allows for the suppression of state changes within the turbomachinery components to the degree that the components remain near steady state, thus reducing the disequilibrium within the system. The ability to tightly regulate the state changes of turbomachinery components, such as the compressor, minimizes the excursion of the compressor operating point from the operating line (operability), allowing for higher performing, more efficient compressor designs by decreasing the amount of stall margin needed for safe engine power level changes. Preliminary studies with the electrification of the turbine engine have shown that this is possible, and this concept can lead to design trades benefitting engine performance, weight, and volume. This paper explores in detail the energy storage mechanisms and control approaches for coordinating their state changes, and ultimately proposes that a higher performing, more efficient compressor design can result.
Document ID
20260001365
Acquisition Source
Glenn Research Center
Document Type
Technical Publication (TP)
Authors
Dennis E Culley
(Glenn Research Center Cleveland, United States)
Santino J Bianco
(Glenn Research Center Cleveland, United States)
Jonathan S Litt
(Glenn Research Center Cleveland, United States)
Jonathan L Kratz
(Glenn Research Center Cleveland, United States)
Arman Mirhashemi
(Glenn Research Center Cleveland, United States)
Date Acquired
February 12, 2026
Publication Date
February 1, 2026
Publication Information
Publisher: National Aeronautics and Space Administration
Subject Category
Aircraft Propulsion and Power
Report/Patent Number
E20365
NASA/TP-20260001365
Funding Number(s)
WBS: 361807.02.03.03.01
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
Technical Review
NASA Peer Committee
Keywords
transient dynamics
gas turbine engine
engine control
Compressor stall margin
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