IP Library › Granted Patent US 12,326,112
Granted Patent B2
US 12,326,112 · App. 18/239,320 · Granted Jun 10, 2025

Gas turbine engine bypass louver and baffle rib design

Inventors: Marco P. Convertini (Vaughan, CA); Shervin Aslani Amoli (Toronto, CA); Harinath Bodugutla Venkata (Etobicoke, CA)
Assignee: PRATT & WHITNEY CANADA CORP.
F02C7/04F02C9/18F05D2260/96
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Quick Facts
Patent No.
US 12,326,112
App. No.
18/239,320
Granted
Jun 10, 2025
Kind
B2
Abstract

A gas turbine engine includes a fan operable for delivering air into a bypass duct. The fan is also operable for delivering air into a core engine housing. The core engine housing encloses a compressor, a combustor and a turbine section. The core engine housing has an upstream end defining a separation point between the bypass duct and the core engine housing. An air separation device is adjacent the upstream end. The air separation device includes a baffle and an opposed louver. The baffle and louver together are structured for defining an airflow path to guide air adjacent the upstream end with a radially outward and axially downstream components. There are baffle ribs on the baffle facing opposed louver ribs on the louver, with at least some of the louver ribs being circumferentially offset from the baffle ribs.

Claims (33)

1. A gas turbine engine comprising:

a fan operable for delivering air into a bypass duct;

the fan also operable for delivering air into a core engine housing, the core engine housing enclosing a compressor section, a combustor and a turbine section;

the core engine housing having an upstream end defining a separation point between the bypass duct and the core engine housing;

an air separation device including a baffle and an opposed louver, the baffle and louver curved for defining an airflow path to guide air with a radially outward and axially downstream components, there being baffle ribs on a curved surface of the baffle facing an opposed curved surface of the louver ribs on the louver, with at least some of the louver ribs being circumferentially offset from the baffle ribs; and

wherein a passage height of the flow channel between the louver and the baffle at a maximum distance is defined, and there being a baffle rib height of the baffle ribs on the baffle extending away from a nominal face of the baffle, with a ratio of the baffle rib height to the passage height being greater than or equal to 0.1 and less than or equal to 0.75.

2. The gas turbine engine as set forth in claim 1 , wherein the baffle ribs extend radially inward of the louver such that some airflow will initially encounter the baffle, and the baffle ribs for guiding the air into a flow channel defined between the baffle and the louver, wherein the air then begins to encounter the louver ribs and the baffle ribs.

3. The gas turbine engine as set forth in claim 2 , wherein the louver is fixed to the baffle.

4. The gas turbine engine as set forth in claim 1 , wherein the louver is fixed to the baffle.

5. The gas turbine engine as set forth in claim 4 , wherein a passage height of a flow channel between the louver and the baffle at its maximum distance is defined, and there being a baffle rib height of the baffle ribs on the baffle extending away from a nominal face of the baffle, with a ratio of the baffle rib height to the passage height being greater than or equal to 0.1 and less than or equal to 0.75.

6. The gas turbine engine as set forth in claim 5 , wherein there being a louver rib height of the louver ribs extending away from a nominal face of the louver and a ratio of the louver ribs height to the passage height being greater than or equal to 0.01 and less than or equal to 0.5.

7. The gas turbine engine as set forth in claim 6 , where there being a baffle rib distance circumferentially between circumferentially adjacent baffle ribs on the baffle and there being a louver rib distance between circumferentially adjacent louver ribs on the louver and the baffle rib distance being equal to the louver rib distance.

8. The gas turbine engine as set forth in claim 6 , where there being a baffle rib distance circumferentially between circumferentially baffle ribs on the baffle and there being a louver rib distance between circumferentially adjacent ribs on the louver and the baffle rib distance being greater than the louver rib distance.

9. The gas turbine engine as set forth in claim 6 , where there being a baffle rib distance circumferentially between circumferentially adjacent baffle ribs on the baffle and there being a louver rib distance between circumferentially adjacent louver ribs on the louver and the louver rib distance being greater than the baffle rib distance.

10. The gas turbine engine as set forth in claim 1 , wherein there being a passage height of a flow channel between the louver and the baffle at a maximum distance a louver rib height of the louver ribs extending away from a nominal face of the louver and a ratio of the louver ribs height to the passage height being greater than or equal to 0.01 and less than or equal to 0.5.

11. The gas turbine engine as set forth in claim 1 , where there being a baffle rib distance circumferentially between circumferentially adjacent baffle ribs and there being a louver rib distance between circumferentially adjacent louver ribs and the baffle rib distance being equal to the louver rib distance.

12. The gas turbine engine as set forth in claim 1 , where there being a baffle rib distance circumferentially between circumferentially baffle ribs and there being a louver rib distance between circumferentially adjacent louver ribs and the baffle rib distance being greater than the louver rib distance.

13. The gas turbine engine as set forth in claim 1 , where there being a baffle rib distance circumferentially between circumferentially adjacent baffle ribs and there being a louver rib distance between circumferentially adjacent louver ribs and the louver rib distance being greater than the baffle rib distance.

14. The gas turbine engine as set forth in claim 1 , wherein the circumferentially offset louver ribs and baffle ribs reduce vibratory stress.

15. A gas turbine engine comprising:

a fan operable for delivering air into a bypass duct;

the fan also operable for delivering air into a core engine housing, the core engine housing enclosing a compressor section, a combustor and a turbine section;

the core engine housing having an upstream end defining a separation point between the bypass duct and the core engine housing;

an air separation device including a baffle and an opposed louver, the baffle and louver curved for defining an airflow path to guide air with a radially outward and axially downstream components, there being baffle ribs on a curved surface of the baffle facing an opposed curved surface of the louver ribs on the louver, with at least some of the louver ribs being circumferentially offset from the baffle ribs; and

wherein there being a louver rib height of the louver ribs extending away from a nominal face and a ratio of the louver ribs height to the passage height being greater than or equal to 0.01 and less than or equal to 0.5.

16. The gas turbine engine as set forth in claim 15 , where there being a baffle rib distance circumferentially between circumferentially adjacent baffle ribs and there being a louver rib distance between circumferentially adjacent louver ribs and the baffle rib distance being equal to the louver rib distance.

17. A gas turbine engine comprising:

a fan operable for delivering air into a bypass duct;

the fan also operable for delivering air into a core engine housing, the core engine housing enclosing a compressor section, a combustor and a turbine section;

the core engine housing having an upstream end defining a separation point between the bypass duct and the core engine housing;

an air separation device including a baffle and an opposed louver, the baffle and louver together structured for defining an airflow path to guide air with a radially outward and axially downstream components, there being baffle ribs on a curved surface of the baffle facing an opposed curved surface of the louver ribs on the louver, with at least some of the louver ribs being circumferentially offset from the baffle ribs;

wherein a passage height of a flow channel between the louver and the baffle at a maximum distance is defined, and there being a baffle rib height of the baffle ribs on the baffle extending away from a nominal face of the baffle, with a ratio of the baffle rib height to the passage height being greater than or equal to 0.1 and less than or equal to 0.75; and

wherein there being a louver rib height of the louver ribs extending away from a nominal face and a ratio of the louver ribs height to the passage height being greater than or equal to 0.01 and less than or equal to 0.5.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 29, 2023
From: CONVERTINI, MARCO P.; AMOLI, SHERVIN ASLANI; VENKATA, HARINATH BODUGUTLA
To: PRATT & WHITNEY CANADA CORP.
Reel/Frame 064736/0093 →
Continuity (1)
Related Publication 20250075657A1 · Mar 6, 2025
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