IP Library Granted Patent US 10,513,947
Granted Patent B2
US 10,513,947 · App. 15/613,686 · Granted Dec 24, 2019

Adjustable flow split platform cooling for gas turbine engine

Inventors: Carey Clum (East Hartford, CT); Adam Generale (Dobbs Ferry, NY)
Assignee: United Technologies Corporation
F01D25/12F01D9/041F01D17/105F02C3/04F05D2220/32F05D2240/12F05D2240/35F05D2240/81F05D2250/185F05D2260/20
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Quick Facts
Patent No.
US 10,513,947
App. No.
15/613,686
Granted
Dec 24, 2019
Kind
B2
Abstract

A turbine assembly may comprise a platform defining a platform cavity cooled by a platform flow with a vane extending from the platform. A platform-fed through cavity is defined by the vane and cooled by a first portion of the platform flow. A direct-fed through flow cavity is defined in the vane and cooled by a direct-fed through flow. The direct-fed through flow cavity and the platform-fed through cavity meet at an outlet to expel an outgoing through flow from the outlet. A platform-fed serpentine cavity may be defined in the vane and separated from the platform-fed through cavity by a divider. The platform-fed serpentine cavity is cooled by a second portion of the platform flow.

Claims (41)

1. A turbine assembly comprising:

a platform defining a platform cavity cooled by a platform flow;

a vane extending from the platform;

a platform-fed through cavity defined by the vane and cooled by a first portion of the platform flow;

a direct-fed through cavity defined by the vane and cooled by a through flow, wherein the direct-fed through cavity and the platform-fed through cavity meet at an outlet to expel an outgoing through flow from the outlet; and

a platform-fed serpentine cavity defined by the vane and separated from the platform-fed through cavity by a divider, wherein the platform-fed serpentine cavity is cooled by a second portion of the platform flow.

2. The turbine assembly of claim 1 , further comprising a blade aft of the vane, wherein the blade is cooled by the outgoing through flow.

3. The turbine assembly of claim 1 , further comprising a trailing edge cavity in fluid communication with the platform-fed serpentine cavity.

4. The turbine assembly of claim 3 , wherein the second portion of the platform flow is exhausted from the trailing edge cavity into a core flow.

5. The turbine assembly of claim 1 , wherein the through flow and the first portion of the platform flow mix at the outlet to form the outgoing through flow.

6. The turbine assembly of claim 1 , wherein the platform-fed through cavity is in fluid communication with the platform cavity.

7. The turbine assembly of claim 1 , wherein the through flow is extracted from a compressor stage of a gas turbine engine.

8. A gas turbine engine comprising:

a compressor configured to compress a core flow;

a combustor in fluid communication with the compressor and configured to combust the core flow;

a turbine aft of the combustor and configured to expand the core flow, the turbine comprising:

a platform defining a platform cavity having a platform-fed flow exiting the platform;

a vane extending from the platform;

a platform-fed through cavity defined by the vane and cooled by a first portion of the platform-fed flow;

a direct-fed through cavity defined by the vane and cooled by a through flow, wherein the direct-fed through cavity and the platform-fed through cavity meet at an outlet; and

a platform-fed serpentine cavity defined by the vane and separated from the platform-fed through cavity, wherein the platform-fed serpentine cavity is cooled by a second portion of the platform-fed flow.

9. The gas turbine engine of claim 8 , further comprising a blade aft of the vane in the turbine, wherein the blade is cooled by the outgoing through flow.

10. The gas turbine engine of claim 8 , further comprising a trailing edge cavity in fluid communication with the platform-fed serpentine cavity.

11. The gas turbine engine of claim 10 , wherein the second portion of the platform-fed flow is exhausted from the trailing edge cavity into the core flow.

12. The gas turbine engine of claim 8 , wherein the through flow and the first portion of the platform-fed flow mix at the outlet to form the outgoing through flow.

13. The gas turbine engine of claim 8 , wherein the platform-fed through cavity in fluid communication with the platform cavity.

14. The gas turbine engine of claim 8 , wherein the through flow is bled from the core flow in the compressor.

15. A vane comprising:

a vane platform defining a platform cavity;

a platform-fed through cavity defined by the vane and in fluid communication with the platform cavity;

a direct-fed through cavity defined by the vane, wherein the direct-fed through cavity and the platform-fed through cavity meet at an outlet; and

a platform-fed serpentine cavity defined by the vane and separated from the platform-fed through cavity by a divider, wherein the platform-fed serpentine cavity is in fluid communication with the platform cavity, wherein the outlet is configured to mix a through flow from the direct-fed through cavity and a platform-fed flow from the platform-fed through cavity.

16. The vane of claim 15 , further comprising a trailing edge cavity in fluid communication with the platform-fed serpentine cavity.

17. The vane of claim 16 , wherein the trailing edge cavity is configured to exhaust a platform-fed flow.

18. The vane of claim 15 , wherein the platform-fed through cavity and the platform-fed serpentine cavity are cooled by a platform-fed flow exiting the platform cavity.

19. The vane of claim 15 , wherein the direct-fed through cavity is cooled by a direct cooling source.

20. A vane comprising:

a vane platform defining a platform cavity;

a platform-fed through cavity defined by the vane and in fluid communication with the platform cavity;

a direct-fed through cavity defined by the vane, wherein the direct-fed through cavity and the platform-fed through cavity meet at an outlet; and

a platform-fed serpentine cavity defined by the vane and separated from the platform-fed through cavity by a divider, wherein the platform-fed serpentine cavity is in fluid communication with the platform cavity, wherein the direct-fed through cavity is cooled by a direct cooling source and the platform-fed through cavity is cooled by a platform flow.

Assignments (5)
CHANGE OF NAME Recorded Jul 27, 2023
From: RAYTHEON TECHNOLOGIES CORPORATION
To: RTX CORPORATION
Reel/Frame 064714/0001 →
CONFIRMATORY LICENSE Recorded Jul 14, 2021
From: UNITED TECHNOLOGIES CORPORATION PRATT & WHITNEY
To: THE GOVERNMENT OF THE UNITED STATES AS REPRSENTED BY THE SECRETARY OF THE AIR FORCE
Reel/Frame 056862/0442 →
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 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 5, 2017
From: CLUM, CAREY; GENERALE, ADAM
To: UNITED TECHNOLOGIES CORPORATION
Reel/Frame 042597/0115 →
Continuity (1)
Related Publication 20180347397A1 · Dec 6, 2018