IP Library › Granted Patent US 12,618,378
Granted Patent B2
US 12,618,378 · App. 19/033,042 · Granted May 5, 2026

Gas turbine engine

Inventors: Daniel Alan Niergarth (Norwood, OH); Jeffrey Donald Clements (Mason, OH); Jeffrey S. Spruill (Hillsboro, OH); Erich Alois Krammer (West Chester, OH); Matthew Kenneth MacDonald (Austin, TX); Scott Alan Schimmels (Miamisburg, OH)
Assignee: General Electric Company
F02C9/18F02C7/18F02C9/28F02K3/06F05D2260/606
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Quick Facts
Patent No.
US 12,618,378
App. No.
19/033,042
Granted
May 5, 2026
Kind
B2
Abstract

A gas turbine engine includes a turbomachine having a compressor section, a combustion section, and a turbine section, the compressor section having a high-pressure compressor defining a high-pressure compressor exit area (A HPCExit ) in square inches. The high-pressure compressor includes a high-pressure compressor flowpath and a plurality of stages. A bleed system includes a plurality of bleed flowpaths that direct compressed air from the high-pressure compressor flowpath. At least two of the bleed flowpaths are at successive stages of the plurality of stages. The gas turbine engine defines a redline exhaust gas temperature (EGT) in degrees Celsius, a total sea level static thrust output (Fn Total ) in pounds, and a corrected specific thrust, wherein the corrected specific thrust is greater than or equal to 42 and less than or equal to 90, the corrected specific determined as follows: Fn Total ×EGT/(A HPCExit 2 ×1000).

Claims (32)

1 . A gas turbine engine comprising:

a turbomachine comprising a compressor section, a combustion section, and a turbine section arranged in serial flow order, the compressor section having a high-pressure compressor defining a high-pressure compressor exit area (A HPCExit ) in square inches, the high-pressure compressor including a high-pressure compressor flowpath and a plurality of stages of high-pressure compressor rotor blades and high-pressure compressor stator vanes; and

a bleed system comprising a plurality of bleed flowpaths including at least three bleed flowpaths in fluid communication with the high-pressure compressor flowpath, the plurality of bleed flowpaths directing compressed air from the high-pressure compressor flowpath, wherein at least two of the bleed flowpaths are at successive stages of the plurality of stages,

wherein the gas turbine engine defines a redline exhaust gas temperature (EGT) in degrees Celsius, a total sea level static thrust output (Fn Total ) in pounds, and a corrected specific thrust, wherein the corrected specific thrust is greater than or equal to 42 and less than or equal to 90, the corrected specific thrust determined as follows: Fn Total ×EGT/(A HPCExit 2 ×1000).

2 . The gas turbine engine of claim 1 , wherein the plurality of bleed flowpaths include a first bleed flowpath at a third stage of the plurality of stages, a second bleed flowpath at a fourth stage of the plurality of stages, and a third bleed flowpath at a sixth stage of the plurality of stages.

3 . The gas turbine engine of claim 1 , wherein the plurality of bleed flowpaths include a first bleed flowpath directed to one or more aircraft systems, a second bleed flowpath directed to a low-pressure turbine of the gas turbine engine, and a third bleed flowpath directed to a high-pressure turbine of the gas turbine engine.

4 . The gas turbine engine of claim 3 , wherein the plurality of bleed flowpaths include a fourth bleed flowpath at a high-pressure compressor diffuser of the high-pressure compressor directed to at least one of the one or more aircraft systems or the low-pressure turbine.

5 . The gas turbine engine of claim 1 , wherein the high-pressure compressor further comprises an outer high-pressure compressor casing and an inner high-pressure compressor casing, and the bleed system further comprises one or more bleed plenums defined between the outer high-pressure compressor casing and the inner high-pressure compressor casing, the one or more bleed plenums defining a portion of the plurality of bleed flowpaths.

6 . The gas turbine engine of claim 5 , wherein the one or more bleed plenums include a first bleed plenum defining a first bleed flowpath, a second bleed plenum defining a second bleed flowpath, and a third bleed plenum defining a third bleed flowpath.

7 . The gas turbine engine of claim 6 , further comprising a flexible seal that separates the first bleed plenum and the second bleed plenum such that the first bleed flowpath is fluidly separate from the second bleed flowpath.

8 . The gas turbine engine of claim 6 , further comprising a rigid support member that separates the second bleed plenum and the third bleed plenum such that the second bleed flowpath is fluidly separate from the third bleed flowpath.

9 . The gas turbine engine of claim 6 , further comprising a plurality of bleed ports disposed through the inner high-pressure compressor casing and a plurality of bleed outlets disposed through the outer high-pressure compressor casing, the plurality of bleed ports and the plurality of bleed outlets being in fluid communication with the one or more bleed plenums.

10 . The gas turbine engine of claim 9 , wherein the plurality of bleed ports and the plurality of bleed outlets are sized and located in the high-pressure compressor such that the first bleed flowpath recovers more than 10% of a dynamic pressure of the first bleed flowpath into a static pressure within the first bleed flowpath.

11 . The gas turbine engine of claim 10 , wherein the plurality of bleed ports and the plurality of bleed outlets are sized and located in the high-pressure compressor such that a pressure ratio of a total pressure of the second bleed flowpath (P second_bleed ) to a total pressure of the first bleed flowpath (P first_bleed ) is less than a pressure ratio of a stage at which the second bleed flowpath is located.

12 . The gas turbine engine of claim 10 , wherein the plurality of bleed ports and the plurality of bleed outlets are sized and located in the high-pressure compressor such that the second bleed flowpath recovers less than 10% of a dynamic pressure of the second bleed flowpath into a static pressure of the second bleed flowpath.

13 . A method of operating a gas turbine engine, the method comprising:

operating the gas turbine engine at a takeoff power level, the gas turbine engine having a turbomachine with a high-pressure compressor having a plurality of stages and defining a high-pressure compressor exit area (A HPCExit ) in square inches, the high-pressure compressor including a plurality of bleed flowpaths including at least three bleed flowpaths in fluid communication with a high-pressure compressor flowpath and at least two of the bleed flowpaths are at successive stages of the plurality of stages, the gas turbine engine defining a redline exhaust gas temperature (EGT) in degrees Celsius, a total sea level static thrust output (Fn Total ) in pounds, and a corrected specific thrust;

directing compressed air through the high-pressure compressor flowpath of the high-pressure compressor;

directing a first portion of the compressed air through a first bleed flowpath of the plurality of bleed flowpaths;

directing a second portion of the compressed air through a second bleed flowpath of the plurality of bleed flowpaths; and

directing a third portion of the compressed air through a third bleed flowpath of the plurality of bleed flowpaths,

wherein the corrected specific thrust is greater than or equal to 42 and less than or equal to 90, the corrected specific thrust determined as follows: Fn Total ×EGT/(A HPCExit 2 ×1000).

14 . The method of claim 13 , wherein the gas turbine engine includes an inner high-pressure compressor casing and an outer high-pressure compressor casing, and the method further comprises:

directing the first portion of the compressed air through a first bleed port in the inner high-pressure compressor casing of the high-pressure compressor, through a first bleed plenum defined between the inner high-pressure compressor casing and the outer high-pressure compressor casing, and through a first bleed outlet in the outer high-pressure compressor casing of the high-pressure compressor;

directing the second portion of the compressed air through a second bleed port in the inner high-pressure compressor casing, through a second bleed plenum defined between the inner high-pressure compressor casing and the outer high-pressure compressor casing, and through a second bleed outlet in the outer high-pressure compressor casing; and

directing the third portion of the compressed air through a third bleed port in the inner high-pressure compressor casing, through a third bleed plenum defined between the inner high-pressure compressor casing and the outer high-pressure compressor casing, and through a third bleed outlet in the outer high-pressure compressor casing.

15 . The method of claim 13 , wherein the gas turbine engine includes a third stage of the plurality of stages, a fourth stage of the plurality of stages, and a sixth stage of the plurality of stages, and the method further comprises directing the first portion of the compressed air from the third stage of the plurality of stages through the first bleed flowpath, directing the second portion of the compressed air from the fourth stage of the plurality of stages through the second bleed flowpath, and directing the third portion of the compressed air from the sixth stage of the plurality of stages through the third bleed flowpath.

16 . The method of claim 13 , wherein the first bleed flowpath recovers more than 10% of a dynamic pressure of the first bleed flowpath into a static pressure within the first bleed flowpath.

17 . The method of claim 13 , wherein a pressure ratio of a total pressure of the second bleed flowpath (P second_bleed ) to a total pressure of the first bleed flowpath (P first_bleed ) is less than a pressure ratio of a stage at which the second bleed flowpath is located.

18 . The method of claim 13 , wherein the second bleed flowpath recovers less than 10% of a dynamic pressure of the second bleed flowpath into a static pressure of the second bleed flowpath.

19 . The method of claim 13 , further comprising directing the first portion of the compressed air to one or more aircraft systems, directing the second portion of the compressed air to a low-pressure turbine of the gas turbine engine, and directing the third portion of the compressed air to a high-pressure turbine of the gas turbine engine.

20 . The method of claim 19 , wherein the high-pressure compressor includes a high-pressure compressor diffuser, and the method further comprises directing a fourth portion of the compressed air from the high-pressure compressor diffuser of the high-pressure compressor, and directing the fourth portion of the compressed air to at least one of the one or more aircraft systems or the low-pressure turbine.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 24, 2025
From: NIERGARTH, DANIEL ALAN; CLEMENTS, JEFFREY DONALD; SPRUILL, JEFFREY S.; KRAMMER, ERICH ALOIS; MACDONALD, MATTHEW KENNETH; SCHIMMELS, SCOTT ALAN
To: GENERAL ELECTRIC COMPANY
Reel/Frame 072666/0391 →
Continuity (3)
Continuation In Part 18481515 · Oct 5, 2023
Continuation In Part 17978629 · Nov 1, 2022
Related Publication 20250163868A1 · May 22, 2025
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