IP Library Granted Patent US 12,601,276
Granted Patent B2
US 12,601,276 · App. 15/200,128 · Granted Apr 14, 2026

High efficiency aircraft parallel hybrid gas turbine electric propulsion system

Inventors: Charles E. Lents (Amston, CT); Christopher J. Hanlon (Sturbridge, MA); Larry W. Hardin (East Hartford, CT); Jonathan Rheaume (West Hartford, CT)
Assignee: RTX Corporation
F01D15/10B64D27/10B64D27/35B64D41/00F02C6/14F02C7/36B64D27/33F05D2220/76F05D2240/60
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Quick Facts
Patent No.
US 12,601,276
App. No.
15/200,128
Granted
Apr 14, 2026
Kind
B2
Abstract

A gas turbine engine includes a compressor section having a first compressor and a second compressor, the second compressor having a higher pressure than the first compressor, and a turbine section having a first turbine and a second turbine, the second turbine having a higher pressure than the first turbine. The first compressor is connected to the first turbine via a first shaft. The second compressor is connected to the second turbine via a second shaft. An electric motor is connected to the first shaft such that rotational energy generated by the electric motor is translated to the first shaft. A fan is connected to the first shaft via a gear system. The gas turbine engine includes at least a takeoff mode of operations, a top of climb mode of operations and a maximum cruise mode of operations. The gas turbine engine is sized to operate at peak efficiency in the maximum cruise mode of operations.

Claims (15)

1 . An aircraft including a gas turbine engine comprising:

a core including a compressor section having a first compressor and a second compressor, the second compressor having a higher pressure than the first compressor, a turbine section having a first turbine and a second turbine, the second turbine having a higher pressure than the first turbine, the first compressor is connected to the first turbine via a first shaft, the second compressor is connected to the second turbine via a second shaft;

an electric motor connected to the first shaft such that rotational energy generated by the electric motor is translated to the first shaft, the electric motor being connected to an on-board energy storage device such that the electric motor is capable of generating rotation using the electric power from the on-board energy storage device during takeoff;

a fan connected to the first shaft via a gear system and the gear system is configured to translate a combined power from the first turbine and the electric motor to the fan to provide thrust for takeoff; and

wherein the gas turbine engine includes at least a takeoff mode of operations, a top of climb mode of operations and a maximum cruise mode of operations;

the gas turbine engine being configured to operate at a maximum allowable inlet temperature of the second turbine while operating in said maximum cruise mode of operations, the inlet temperature of the second turbine corresponding to a thrust output of the core;

wherein an aircraft thrust requirement on the gas turbine engine in at least one of the takeoff mode of operations and the top of climb mode of operations is higher than a thrust requirement in the maximum cruise mode of operations; and

wherein the engine core has insufficient available thrust to complete a takeoff mode of operations due to being configured to operate at the maximum inlet temperature of the second turbine in said maximum cruise mode of operations.

2 . The aircraft of claim 1 , wherein the electric motor is a motor/generator.

3 . The aircraft of claim 1 , wherein the electric motor is connected to the first shaft via a towershaft.

4 . The aircraft of claim 1 , further comprising a fan section forward of the first compressor, the fan section including the fan.

5 . The aircraft of claim 1 , wherein a geometry of the gas turbine engine is physically sized such that a turbine inlet temperature of the second turbine is at a maximum while said engine is in said maximum cruise mode of operations.

6 . The aircraft of claim 1 , wherein a flow rate through the gas turbine engine is configured to be controlled by a controller such that the turbine inlet temperature of the second turbine is at a maximum while said engine is in said maximum cruise mode of operations.

7 . The aircraft of claim 1 , wherein the electric motor is configured to provide rotational input power to the first shaft during at least one of the takeoff mode of operations and the top of climb mode of operations.

8 . The aircraft of claim 7 , wherein the electric motor is configured to provide rotational input power to the first shaft during each of the takeoff mode of operations and the top of climb mode of operations.

Assignments (5)
CHANGE OF NAME Recorded Jun 30, 2025
From: RAYTHEON TECHNOLOGIES CORPORATION
To: RTX CORPORATION
Reel/Frame 071760/0310 →
CHANGE OF NAME Recorded Jul 27, 2023
From: RAYTHEON TECHNOLOGIES CORPORATION
To: RTX CORPORATION
Reel/Frame 064402/0837 →
CORRECTIVE ASSIGNMENT TO CORRECT THE AND REMOVE PATENT APPLICATION NUMBER 11886281 AND ADD PATENT APPLICATION NUMBER 14846874. TO CORRECT THE RECEIVING PARTY ADDRESS PREVIOUSLY RECORDED AT REEL: 054062 FRAME: 0001. ASSIGNOR(S) HEREBY CONFIRMS THE CHANGE OF ADDRESS. Recorded Mar 4, 2021
From: UNITED TECHNOLOGIES CORPORATION
To: RAYTHEON TECHNOLOGIES CORPORATION
Reel/Frame 055659/0001 →
CHANGE OF NAME Recorded Sep 4, 2020
From: UNITED TECHNOLOGIES CORPORATION
To: RAYTHEON TECHNOLOGIES CORPORATION
Reel/Frame 054062/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2016
From: LENTS, CHARLES E.; HANLON, CHRISTOPHER J.; HARDIN, LARRY W.; RHEAUME, JONATHAN
To: UNITED TECHNOLOGIES CORPORATION
Reel/Frame 039062/0711 →
Continuity (1)
Related Publication 20180003071A1 · Jan 4, 2018
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