IP Library Granted Patent US 11,566,587
Granted Patent B2
US 11,566,587 · App. 16/812,636 · Granted Jan 31, 2023

Geared turbomachine fan and compressor rotation

Inventors: William G. Sheridan (Southington, CT); Michael E. McCune (Colchester, CT)
Assignee: RAYTHEON TECHNOLOGIES CORPORATION
F02K3/06F01D25/168F02C7/36F04D29/522F05D2220/36F05D2260/40311
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Quick Facts
Patent No.
US 11,566,587
App. No.
16/812,636
Granted
Jan 31, 2023
Kind
B2
Abstract

An exemplary gas turbine engine includes a fan section including a fan rotor and at least one fan blade. A fan pressure ratio across the at least one fan blade is less than 1.45, noninclusive of the pressure across any fan exit guide vane system. The engine further includes a low-pressure compressor having a low-pressure compressor rotor that rotates together with the fan rotor at a common speed in operation, and a geared architecture that drives the low-pressure compressor rotor and the fan rotor. The geared architecture has a gear reduction ratio of greater than 2.5. The engine further includes a high-pressure compressor having a pressure ratio greater than 20, a low-pressure turbine having a pressure ratio greater than 5, and a bypass ratio greater than 10.

Claims (44)

1. A turbofan engine comprising:

a fan section including a fan rotor and at least one fan blade, an outer duct that surrounds the at least one fan blade to define a fan bypass passage, and a fan pressure ratio across the at least one fan blade of less than 1.45, noninclusive of the pressure across any fan exit guide vane system;

a compressor section including a low-pressure compressor and a high-pressure compressor, wherein the low-pressure compressor includes a plurality of stages, the low-pressure compressor includes a low-pressure compressor rotor that rotates together with the fan rotor at a common speed in operation, and wherein the fan section drives air along a bypass flowpath and the compressor section drives air along a core flowpath in operation, and wherein the high-pressure compressor has a pressure ratio greater than 20;

a bypass ratio greater than 10;

a geared architecture that drives the low-pressure compressor rotor and the fan rotor, the geared architecture having a gear reduction ratio of greater than 2.3; and

a turbine section including a two-stage high-pressure turbine and a three-stage low-pressure turbine, wherein the low-pressure turbine includes an inlet, an outlet and a pressure ratio greater than 5, and the pressure ratio is pressure measured prior to the inlet as related to pressure at the outlet.

2. The turbofan engine of claim 1 , wherein the geared architecture includes an epicyclic gear train.

3. The turbofan engine of claim 2 , further comprising a low corrected fan tip speed less than 1150 ft/second, wherein the low corrected fan tip speed is an actual fan tip speed at a temperature divided by (T/518.7) 0.5 , where T represents the temperature in degrees Rankine.

4. The turbofan engine of claim 3 , wherein the high-pressure compressor includes a greater number of stages than a total number of stages of the high-pressure turbine and the low-pressure turbine.

5. The turbofan engine of claim 4 , further comprising an engine overall compression ratio greater than 40.

6. The turbofan engine of claim 5 , wherein the turbofan engine is a two-spool engine including a low-speed spool and a high-speed spool mounted for rotation about an engine central longitudinal axis relative to an engine static structure.

7. The turbofan engine of claim 6 , wherein the low-speed spool includes an inner shaft that interconnects the geared architecture and the low-pressure turbine rotor such that rotating the geared architecture rotatably drives the fan rotor and the low-pressure compressor rotor at a lower speed than the low-speed spool, and the high-speed spool includes an outer shaft that interconnects the high-pressure compressor rotor and the high-pressure turbine rotor.

8. The turbofan engine of claim 7 , wherein the low-speed spool and the high-speed spool are supported by bearing systems.

9. The turbofan engine of claim 8 , wherein the inner shaft and the outer shaft are concentric and rotate via the bearing systems about the engine central longitudinal axis.

10. The turbofan engine of claim 9 , wherein the geared architecture is a planetary geared architecture.

11. The turbofan engine of claim 10 , wherein the low-pressure compressor rotor and the fan rotor rotate in the same direction in operation.

12. The turbofan engine of claim 11 , wherein the low-pressure compressor rotor and the fan rotor are directly connected to a fan shaft, and an end of the fan shaft is directly connected to a carrier gear of the geared architecture such that the fan shaft is rotated together with the carrier gear in response to the geared architecture being rotatably driven by the inner shaft in operation.

13. The turbofan engine of claim 12 , wherein the geared architecture is positioned between the low-pressure compressor and the high-pressure compressor.

14. The turbofan engine of claim 13 , wherein the geared architecture has a gear reduction ratio of greater than 2.5.

15. The turbofan engine of claim 14 , wherein the high-pressure compressor includes nine stages.

16. The turbofan engine of claim 15 , wherein the bearing systems include at least one bearing rotatably supporting the low-speed spool and positioned axially closer to the geared architecture between the geared architecture and the low-pressure turbine with respect to the engine central longitudinal axis.

17. The turbofan engine of claim 9 , wherein the geared architecture is a star geared architecture.

18. The turbofan engine of claim 17 , wherein the low-pressure compressor rotor and the fan rotor rotate in the same direction in operation.

19. The turbofan engine of claim 18 , wherein the geared architecture is positioned between the low-pressure compressor and the high-pressure compressor.

20. The turbofan engine of claim 19 , wherein the high-pressure compressor includes nine stages.

21. The turbofan engine of claim 20 , wherein the geared architecture has a gear reduction ratio of greater than 2.5.

22. The turbofan engine of claim 19 , further comprising a fan frame extending radially across the fan bypass passage, wherein the fan frame supports the outer housing, and the low-pressure compressor is axially forward of the fan frame with respect to the engine central longitudinal axis.

23. The turbofan engine of claim 22 , wherein a plurality of bearings rotatably support the fan shaft and react thrust loads from the fan rotor applied to the fan shaft in operation.

24. The turbofan engine of claim 23 , wherein the plurality of bearings are tapered bearings that react thrust, radial and moment loads from the fan rotor applied to the fan shaft in operation.

25. The turbofan engine of claim 23 , wherein the bearing systems include at least one bearing rotatably supporting the low-speed spool and positioned axially closer to the geared architecture between the geared architecture and the low-pressure turbine with respect to the engine central longitudinal axis.

26. The turbofan engine of claim 25 , wherein the at least one bearing includes at least two bearings that are bi-directional tapered thrust bearings.

27. The turbofan engine of claim 26 , wherein the high-pressure compressor is a nine-stage high-pressure compressor.

28. The turbofan engine of claim 27 , wherein:

the geared architecture has a gear reduction ratio of greater than 2.5;

the plurality of bearings are tapered bearings that react thrust, radial and moment loads from the fan rotor applied to the fan shaft in operation; and

the low-pressure compressor rotor and the high-pressure compressor rotor are both rotors of axial compressors, and there are no other types of compressors within the compressor section.

29. The turbofan engine of claim 28 , further comprising:

a mid-turbine frame arranged axially between the high-pressure turbine rotor and the low-pressure turbine rotor, wherein the mid-turbine frame supports two of the bearing systems in the turbine section, and the mid-turbine frame includes airfoils within the core flowpath;

wherein a torsional strength of the inner shaft is less than a torsional strength of the outer shaft; and

wherein each of the at least one fan blade is forward of the low-pressure compressor with respect to the engine central longitudinal axis.

30. The turbofan engine of claim 19 , further comprising:

a fan frame extending radially across the fan bypass passage, wherein the fan frame supports the outer housing, and the low-pressure compressor is axially forward of the fan frame with respect to the engine central longitudinal axis;

wherein a plurality of tapered bearings rotatably support the fan shaft and react thrust, radial and moment loads from the fan rotor applied to the fan shaft in operation; and

wherein the at least one bearing includes at least two bearings that are bi-directional tapered thrust bearings.

Assignments (3)
CHANGE OF NAME Recorded Jul 27, 2023
From: RAYTHEON TECHNOLOGIES CORPORATION
To: RTX CORPORATION
Reel/Frame 064714/0001 →
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 →
Continuity (3)
Division 15411459 · Jan 20, 2017
Continuation 13356940 · Jan 24, 2012
Related Publication 20200217273A1 · Jul 9, 2020