IP Library › Granted Patent US 12,297,770
Granted Patent B2
US 12,297,770 · App. 18/405,485 · Granted May 13, 2025

Compression in a gas turbine engine

Inventors: Craig W Bemment (Derby, GB); Pascal Dunning (Derby, GB)
Assignee: ROLLS-ROYCE plc
F02C3/04F02C7/36F02K3/06F05D2200/14F05D2220/323F05D2220/36F05D2240/307F05D2260/4031
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Quick Facts
Patent No.
US 12,297,770
App. No.
18/405,485
Granted
May 13, 2025
Kind
B2
Abstract

A gas turbine engine for an aircraft comprises an engine core comprising a turbine, a compressor, and a core shaft connecting the turbine to the compressor, wherein a compressor exit temperature is defined as an average temperature of airflow at the exit from the compressor; and a fan located upstream of the engine core, the fan comprising a plurality of fan blades extending from a hub, each fan blade having a leading edge and a trailing edge, wherein a fan rotor entry temperature is defined as an average temperature of airflow across the leading edge of each fan blade at cruise conditions and a fan tip rotor exit temperature is defined as an average temperature of airflow across a radially outer portion of each fan blade at the trailing edge at cruise conditions. A core to fan tip temperature rise ratio is in the range from 2.845 to 3.8.

Claims (46)

1. A gas turbine engine for an aircraft comprising:

an engine core comprising a turbine, a compressor, a core shaft connecting the turbine to the compressor, and an annular splitter at which the flow is divided between a core flow that flows through the engine core, and a bypass flow that flows along a bypass duct, wherein stagnation streamlines around the circumference of the engine, stagnating on a leading edge of the annular splitter, form a streamsurface forming a radially inner boundary of a streamtube that contains all of the bypass flow; and

a fan located upstream of the engine core, the fan comprising a plurality of fan blades extending from a hub, each fan blade having a leading edge and a trailing edge, wherein a fan tip radius of the fan is defined between a centreline of the engine and an outermost tip of each fan blade at its leading edge and a hub radius is defined between the centreline of the engine and an outer surface of the hub at the radial position of the leading edge of each fan blade, each fan blade having a radially outer portion lying within the streamtube that contains the bypass flow, and wherein a fan rotor entry temperature is defined as an average temperature of airflow across the leading edge of each fan blade at cruise conditions and a fan rotor exit temperature is defined as an average temperature of airflow across a radially outer portion of each fan blade at the trailing edge at cruise conditions, wherein

a product of fan tip temperature rise and bypass ratio (BPR) at cruise conditions of:

fantiprotorexittemperature

fanrotorentrytemperature

×

BPR

is less than 17.76,

a bypass ratio at cruise conditions is in a range of 10 to 16,

the cruise conditions means the conditions at mid-cruise of the aircraft to which the gas turbine engine is attached, and

the cruise conditions at mid-cruise means the conditions experienced by the aircraft and the gas turbine engine at a point between top of climb and start of descent at which 50% of the total fuel that is burned between the top of climb and the start of descent has been burned.

2. The gas turbine engine according to claim 1 , wherein the product of the fan tip temperature rise and bypass ratio at the cruise conditions is less than 16.65, or less than 15.54.

3. The gas turbine engine according to claim 1 , wherein the product of the fan tip temperature rise and bypass ratio at the cruise conditions is less than 13.65, or less than 13.32.

4. The gas turbine engine according to claim 1 , wherein the product of the fan tip temperature rise and bypass ratio at the cruise conditions is greater than 10.5.

5. The gas turbine engine according to claim 1 , wherein the product of the fan tip temperature rise and bypass ratio at the cruise conditions is in a range of 10.5 to 11.655.

6. The gas turbine engine according to claim 1 , wherein the product of the fan tip temperature rise and bypass ratio at the cruise conditions is in a range of 11.025 to 13.32, or in a range of 11.1 to 13.125.

7. The gas turbine engine according to claim 1 , wherein the product of the fan tip temperature rise and bypass ratio at the cruise conditions is in a range of 13.65 to 17.76, or in a range of 14.175 to 16.65.

8. The gas turbine engine according to claim 1 , wherein the bypass ratio at the cruise conditions is less than 14.

9. The gas turbine engine according to claim 1 , wherein the bypass ratio at the cruise conditions is less than 12.

10. The gas turbine engine of claim 1 , further comprising a gearbox configured to receive an input from the core shaft and output drive to the fan so as to drive the fan at a lower rotational speed than the core shaft.

11. The gas turbine engine of claim 10 , wherein the gearbox has a gear ratio of at least 3.2.

12. The gas turbine engine of claim 11 , wherein the gearbox has a gear ratio in the range of from 3.4 to 4.2.

13. The gas turbine engine of claim 12 , wherein the fan has a fan tip loading greater than 0.28 at the cruise conditions.

14. The gas turbine engine of claim 13 , wherein the fan tip loading at the cruise conditions is in the range of from 0.29 to 0.4, or in the range of from 0.30 to 0.35.

15. The gas turbine engine of claim 14 , wherein the fan has a fan diameter in the range of from 330 cm to 380 cm and a fan rotational speed at the cruise conditions in the range of from 1200 rpm to 2000 rpm, and a turbine entry temperature at maximum take-off conditions is in the range of from 1950K to 2000K.

16. The gas turbine engine of claim 13 , wherein a turbine entry temperature at the cruise conditions is in the range of from 1400K to 1650K, or in the range of from 1600K to 1650K.

17. The gas turbine engine of claim 1 , wherein the fan has a fan pressure ratio in the range of from 1.20 to 1.45, a fan diameter less than 240 cm, and a fan tip loading in the range of from 0.28 to 0.31.

18. The gas turbine engine of claim 17 , wherein the turbine is a first, lower pressure, turbine, and the gas turbine engine includes a second, higher pressure, turbine, a first turbine entrance temperature is defined as an average temperature of airflow at the entrance to the first turbine at the cruise conditions and a first turbine exit temperature is defined as an average temperature of airflow at the exit from the first turbine at the cruise conditions, and a low pressure turbine temperature change is defined as:

the first turbine exit temperature

the first turbine entrance temperature

,

wherein a turbine to fan tip temperature change ratio of:

the low pressure turbine temperature change

the fan tip temperature rise

is in the range from 1.46 to 2.0.

19. The gas turbine engine of claim 18 , wherein a compressor exit temperature is defined as an average temperature of airflow at the exit from the compressor at the cruise conditions and a core entry temperature is defined as an average temperature of airflow entering the engine core at the cruise conditions, and a core compressor temperature rise is defined as:

the compressor exit temperature

the core entry temperature

,

and

wherein a core compressor to fan tip temperature rise ratio of:

the core compressor temperature rise

the fan tip temperature rise

is in the range from 2.67 to 3.8.

20. The gas turbine engine of claim 19 , wherein the first turbine includes four rotor stages.

Priority Claims (1)
GB 1908972.1 · Jun 24, 2019 · national
Continuity (5)
Continuation 18123091 · Mar 17, 2023
Continuation 17697630 · Mar 17, 2022
Continuation 17345588 · Jun 11, 2021
Continuation 16558417 · Sep 3, 2019
Related Publication 20240175391A1 · May 30, 2024
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