IP Library › Granted Patent US 12,024,301
Granted Patent B2
US 12,024,301 · App. 18/098,463 · Granted Jul 2, 2024

Gas turbine engine compression system with core compressor pressure ratio

Inventors: Gareth M Armstrong (Nottingham, GB); Nicholas Howarth (Derby, GB)
Assignee: ROLLS-ROYCE plc
B64D27/10F01D5/28F02C3/04F02C3/06F02C3/107F02C7/04F02K3/06F02K3/068B64D2033/0286F05D2220/3215F05D2220/3219F05D2220/36F05D2260/40311
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Quick Facts
Patent No.
US 12,024,301
App. No.
18/098,463
Granted
Jul 2, 2024
Kind
B2
Abstract

A gas turbine engine has a compression system radius ratio defined as the ratio of the radius of the tip of a fan blade to the radius of the tip of the most downstream compressor blade in the range of from 5 to 9. This results in an optimum balance between installation benefits, operability, maintenance requirements and engine efficiency when the gas turbine engine is installed on an aircraft.

Claims (48)

1. A gas turbine engine for an aircraft, the gas turbine engine comprising:

an engine core comprising a turbine, a compressor, and a combustor;

a fan comprising a plurality of fan blades; and

a gearbox that receives an input from a core shaft that is connected to at least a part of the turbine, the gearbox outputting drive to the fan so as to drive the fan at a lower rotational speed than the core shaft, wherein

a compression system speed ratio is defined as a ratio of a rotational speed of a most downstream compressor blade to a rotational speed of the fan at cruise conditions;

a core compressor pressure ratio is defined as a pressure ratio across the compressor at cruise conditions excluding a pressure rise due to the fan;

the compression system speed ratio is in a range of 6 to 10; and

a product of the compression system speed ratio and the core compressor pressure ratio is in a range of 217.8 to 300.

2. The gas turbine engine according to claim 1 , wherein the product of the compression system speed ratio and the core compressor pressure ratio is in a range of 224.4 to 300.

3. The gas turbine engine according to claim 1 , wherein the product of the compression system speed ratio and the core compressor pressure ratio is in a range of 231 to 300.

4. The gas turbine engine according to claim 1 , wherein the product of the compression system speed ratio and the core compressor pressure ratio is in a range of 217.8 to 280.

5. The gas turbine engine according to claim 1 , wherein the product of the compression system speed ratio and the core compressor pressure ratio is in a range of 217.8 to 260.

6. The gas turbine engine according to claim 1 , wherein the product of the compression system speed ratio and the core compressor pressure ratio is in a range of 224.4 to 280.

7. The gas turbine engine according to claim 1 , wherein the compression system speed ratio is in a range 6 to 8.

8. The gas turbine engine according to claim 1 , wherein the compression system speed ratio is in a range of 6.1 to 8.3.

9. The gas turbine engine according to claim 1 , wherein the compression system speed ratio is in a range of 6.4 to 8.1.

10. The gas turbine engine according to claim 1 , wherein the core compressor pressure ratio is in the range 33 to 55.

11. The gas turbine engine according to claim 1 , wherein the fan pressure ratio, defined as the ratio of a mean total pressure of a flow at a fan exit to a mean total pressure of a flow at a fan inlet, is in a range of 1.35 to 1.43 at cruise conditions.

12. The gas turbine engine according to claim 1 , wherein a diameter of the fan is in a range of 220 cm to 240 cm.

13. The gas turbine engine according to claim 1 , wherein, at cruise conditions, a fan tip loading defined as dH/U tip 2 , where dH is an enthalpy rise across the fan and U tip is a velocity of a fan tip at a leading edge of a tip of a fan blade of the plurality of fan blades, is in a range of 0.30 to 0.34.

14. The gas turbine engine according to claim 1 , wherein a compression system radius ratio, defined as a ratio of a radius of a tip of a fan blade of the plurality of fan blades to a radius of a tip of the most downstream compressor blade, is in a range of 5.1 to 6.5.

15. The gas turbine engine according to claim 1 , wherein

a bypass duct is defined radially outside the engine core, with a leading edge of a splitter defining a point at which flow splits into core flow and bypass flow;

an engine core radius ratio is defined as a ratio of a radius of a tip of a most downstream turbine blade in the gas turbine engine to a radius of the leading edge of the splitter;

a compression system radius ratio is defined as a ratio of a radius of a tip of a fan blade of the plurality of fan blades to a radius of a tip of the most downstream compressor blade; and

the compression system radius ratio divided by the engine core radius ratio is in a range of 5.5 to 7.

16. The gas turbine engine according to claim 1 , wherein

a bypass duct is defined radially outside the engine core, with a leading edge of a splitter defining a point at which flow splits into core flow and bypass flow;

a core compressor aspect ratio is defined as a ratio of an axial distance between the leading edge of the splitter and a leading edge of the tip of the most downstream compressor blade to a radius of the leading edge of the splitter;

a compression system radius ratio is defined as a ratio of a radius of a tip of a fan blade of the plurality of fan blades to a radius of a tip of the most downstream compressor blade; and

the compression system radius ratio divided by the core compressor aspect ratio is in a range of 1.7 to 2.7.

17. The gas turbine engine according to claim 1 , wherein

a compression system radius ratio is defined as a ratio of a radius of a tip of a fan blade of the plurality of fan blades to a radius of a tip of the most downstream compressor blade; and

a product of the compression system radius ratio and the compression system speed ratio is in a range of 35 to 50.

18. A gas turbine engine for an aircraft, the gas turbine engine comprising:

an engine core comprising a turbine, a compressor, and a combustor;

a fan comprising a plurality of fan blades; and

a gearbox that receives an input from a core shaft that is connected to at least a part of the turbine, the gearbox outputting drive to the fan so as to drive the fan at a lower rotational speed than the core shaft, wherein

a compression system speed ratio is defined as a ratio of a rotational speed of a most downstream compressor blade to a rotational speed of the fan at cruise conditions;

a core compressor pressure ratio is defined as a pressure ratio across the compressor at cruise conditions excluding a pressure rise due to the fan;

a bypass duct is defined radially outside the engine core, with a leading edge of a splitter defining a point at which flow splits into core flow and bypass flow, and a bypass ratio is defined as the ratio of the mass flow rate of the bypass flow through the bypass duct to the mass flow rate of the core flow through the core at cruise conditions;

the bypass ratio is in a range 10 to 11.5; and

a product defined by: the compression system speed ratio multiplied by the core compressor pressure ratio multiplied by the bypass ratio is in a range of 2310 to 2948.

19. The gas turbine engine according to claim 1 , wherein the cruise conditions correspond to

a forward Mach number of 0.85; and

international standard atmospheric conditions at 35000 ft (10668m).

20. The gas turbine engine according to claim 1 , wherein

the core compressor pressure ratio is in the range 35 to 52.

Priority Claims (1)
GB 1903257 · Mar 11, 2019 · national
Continuity (3)
Continuation 17562609 · Dec 27, 2021
Continuation 16437284 · Jun 11, 2019
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