IP Library Granted Patent US 10,677,264
Granted Patent B2
US 10,677,264 · App. 15/293,368 · Granted Jun 9, 2020

Supersonic single-stage turbofan engine

Inventors: Thomas Ory Moniz (Loveland, OH); Daniel Robert Dwyer (West Chester, OH); Mark John Laricchiuta (West Chester, OH); Jeffrey Donald Clements (Mason, OH); Brandon Wayne Miller (Liberty Township, OH)
Assignee: GENERAL ELECTRIC COMPANY
F04D29/663F01D9/041F02C3/04F02K3/06F04D29/324F04D29/325F04D29/384F04D29/522F04D29/542F04D29/665F05D2220/36F05D2220/80F05D2260/961Y02T50/673
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,677,264
App. No.
15/293,368
Granted
Jun 9, 2020
Kind
B2
Abstract

A gas turbine engine includes a fan section having a single-stage fan, a core turbine engine, and a nacelle at least partially surrounding the fan of the fan section and the core turbine engine. The gas turbine engine also includes an outlet guide vane extending between a casing of the core turbine engine and the nacelle. The gas turbine engine is configured to define an acoustic ratio greater than or equal to 2.3, with the acoustic ratio being a ratio of an axial spacing between the trailing edge of the fan blade and the leading edge of the outlet guide vane at a radial location seventy-five percent (75%) along the span of the fan blade to the axial width of the fan blade also at the radial location seventy-five percent (75%) along the span of the fan blade.

Claims (33)

1. A gas turbine engine defining an axial direction and a radial direction, the gas turbine engine comprising:

a fan section comprising a single-stage fan having a fan blade, the fan blade defining a span, an axial width along the axial direction, and a trailing edge;

a core turbine engine comprising a casing;

a nacelle at least partially surrounding the fan of the fan section and the core turbine engine; and

an outlet guide vane extending between the casing of the core turbine engine and the nacelle and defining a leading edge;

wherein an acoustic ratio of the gas turbine engine is greater than or equal to 2.3, with the acoustic ratio being a ratio of an axial spacing between the trailing edge of the fan blade and the leading edge of the outlet guide vane at a radial location seventy-five percent (75%) along the span of the fan blade to the axial width of the fan blade also at the radial location seventy-five percent (75%) along the span of the fan blade.

2. The gas turbine engine of claim 1 , wherein the acoustic ratio of the gas turbine engine is greater than or equal to 2.5.

3. The gas turbine engine of claim 1 , wherein the acoustic ratio is greater than or equal to 2.75.

4. The gas turbine engine of claim 1 , wherein the axial width of the fan blade at the radial location seventy-five percent (75%) along the span of the fan blade is at least about 5.5 inches.

5. The gas turbine engine of claim 1 , wherein the axial spacing between the trailing edge of the fan blade and the leading edge of the outlet guide vane at the radial location seventy-five percent (75%) along the span of the fan blade is at least about fourteen (14) inches.

6. The gas turbine engine of claim 1 , wherein the axial spacing between the trailing edge of the fan blade and the leading edge of the outlet guide vane at the radial location seventy-five percent (75%) along the span of the fan blade is at least about sixteen (16) inches.

7. The gas turbine engine of claim 1 , wherein the core turbine engine defines a core air flowpath and an inlet to the core air flowpath, and wherein the outlet guide vane extends between the casing of the core turbine engine and the nacelle at a location aft of the inlet to the core air flowpath.

8. The gas turbine engine of claim 7 , wherein the outlet guide vane extends substantially along the radial direction.

9. The gas turbine engine of claim 7 , wherein the outlet guide vane defines a centerline, and wherein the centerline defines an angle with the radial direction less than thirty degrees (30°).

10. The gas turbine engine of claim 1 , wherein the gas turbine engine is a direct drive gas turbine engine.

11. The gas turbine engine of claim 1 , wherein the gas turbine engine is a supersonic turbofan engine configured to operate at flight speeds greater than Mach 1.

12. The gas turbine engine of claim 1 , wherein the core turbine engine comprises a compressor section, and wherein the compressor section comprises a single compressor.

13. The gas turbine engine of claim 1 , wherein the single stage fan defines a fan pressure ratio greater than 1.8.

14. A method of operating a gas turbine engine comprising a single-stage fan including a fan blade, a core turbine engine including a casing, a nacelle, and an outlet guide vane extending between the casing of the core turbine engine and the nacelle, the method comprising:

operating the gas turbine engine at subsonic flight speeds; and

operating the gas turbine engine at supersonic flight speeds with the gas turbine engine defining an acoustic ratio greater than or equal to 2.3, with the acoustic ratio being a ratio of an axial spacing between the trailing edge of the fan blade and the leading edge of the outlet guide vane at a radial location seventy-five percent (75%) along the span of the fan blade to the axial width of the fan blade also at the radial location seventy-five percent (75%) along the span of the fan blade.

15. The method of claim 14 , wherein the acoustic ratio of the gas turbine engine is greater than or equal to 2.5.

16. The method of claim 14 , wherein the acoustic ratio is greater than or equal to 2.75.

17. The method of claim 14 , wherein the axial width of the fan blade at the radial location seventy-five percent (75%) along the span of the fan blade is at least about 5.5 inches.

18. The method of claim 14 , wherein the axial spacing between the trailing edge of the fan blade and the leading edge of the outlet guide vane at the radial location seventy-five percent (75%) along the span of the fan blade is at least about fourteen (14) inches.

19. The method of claim 14 , wherein the core turbine engine defines a core air flowpath and an inlet to the core air flowpath, and wherein the outlet guide vane extends between the casing of the core turbine engine and the nacelle at a location aft of the inlet to the core air flowpath.

20. A gas turbine engine defining an axial direction and a radial direction, the gas turbine engine comprising:

a fan section comprising a single-stage fan having a fan blade, the fan blade defining a span, an axial width along the axial direction, and a trailing edge, wherein the single stage fan defines a fan pressure ratio greater than 1.8;

a core turbine engine comprising a casing;

a nacelle at least partially surrounding the fan of the fan section and the core turbine engine; and

an outlet guide vane extending between the casing of the core turbine engine and the nacelle and defining a leading edge;

wherein an acoustic ratio of the gas turbine engine is greater than or equal to 2.3, with the acoustic ratio being a ratio of an axial spacing between the trailing edge of the fan blade and the leading edge of the outlet guide vane at a radial location seventy-five percent (75%) along the span of the fan blade to the axial width of the fan blade also at the radial location seventy-five percent (75%) along the span of the fan blade,

wherein the outlet guide vane is forward-swept, such that the outlet guide vane is tilted forward.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 14, 2016
From: MONIZ, THOMAS ORY; DWYER, DANIEL ROBERT; LARICCHIUTA, MARK JOHN; CLEMENTS, JEFFREY DONALD; MILLER, BRANDON WAYNE
To: GENERAL ELECTRIC COMPANY
Reel/Frame 040013/0367 →
Continuity (1)
Related Publication 20180106274A1 · Apr 19, 2018
Cited By (15)
US 12,292,017 US 12,421,854 US 12,428,962 US 12,429,067 US 12,497,923 US 12,497,934 US 12,510,104 US 12,560,125 US 12,577,926 US 12,601,311 US 12,612,883 US 12,631,197 US 12,674,420 US 12,698,747 US 12,704,097