IP Library › Granted Patent US 11,578,608
Granted Patent B1
US 11,578,608 · App. 17/454,520 · Granted Feb 14, 2023

Turbine vane airfoil profile

Inventors: Remo Marini (Lasalle, CA); Marc Tardif (Candiac, CA); Jason Gillespie (Delson, CA)
Assignee: PRATT & WHITNEY CANADA CORP.
F01D9/041F01D5/141F01D5/288F05D2230/90F05D2240/12F05D2250/74
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Quick Facts
Patent No.
US 11,578,608
App. No.
17/454,520
Granted
Feb 14, 2023
Kind
B1
Abstract

A turbine vane for a gas turbine engine has an airfoil including leading and trailing edges joined by spaced-apart pressure and suction sides to provide an external airfoil surface. The surface is formed in substantial conformance with multiple cross-sectional profiles of the airfoil defined by a set of Cartesian coordinates set forth in Table 1, the Cartesian coordinates provided by an axial coordinate scaled by a local axial chord, a circumferential coordinate scaled by a local axial chord, and a span location.

Claims (25)

1. A turbine vane for a gas turbine engine, the turbine vane comprising:

an airfoil having a leading edge and a trailing edge joined by a pressure side and a suction side to provide an external airfoil surface; and

wherein the external airfoil surface is formed in substantial conformance with cross-section profiles of the airfoil defined by a set of Cartesian coordinates set forth in Table 1, the set of Cartesian coordinates provided by an axial coordinate scaled by a local axial chord, a circumferential coordinate scaled by the local axial chord, and a span location, wherein the local axial chord corresponds to a width of the airfoil between the leading edge and the trailing edge at the span location.

2. The turbine vane according to claim 1 , wherein the airfoil is a high pressure turbine vane.

3. The turbine vane according to claim 1 , wherein the airfoil is a first-stage or a second-stage high pressure turbine vane.

4. The turbine vane according to claim 1 , wherein the external airfoil surface is formed in conformance with the cross-section profiles of the airfoil defined by the set of Cartesian coordinates set forth in Table 1 to a tolerance of ±0.050 inches (±1.27 mm).

5. The turbine vane according to claim 1 , wherein the external airfoil surface is a cold, uncoated airfoil surface at nominal definition.

6. The turbine vane according to claim 5 , further comprising a coating over the external airfoil surface.

7. A high pressure turbine vane comprising:

an airfoil having an external airfoil surface formed in substantial conformance with cross-section airfoil profiles defined by a set of Cartesian coordinates set forth in Table 1.

8. The high pressure turbine vane according to claim 7 , wherein the external airfoil surface is a cold, uncoated airfoil surface at nominal definition.

9. The high pressure turbine vane according to claim 7 , wherein the external airfoil surface is formed in conformance with the cross-section profiles of the airfoil defined by the set of Cartesian coordinates set forth in Table 1 to a tolerance of ±0.050 inches (±1.27 mm).

10. The high pressure turbine vane according to claim 8 , further comprising a coating over the external airfoil surface.

11. A gas turbine engine comprising:

a high pressure (HP) turbine configured to drive a high pressure compressor;

wherein the HP turbine comprises at least one stage of turbine vanes, wherein at least one of the turbine vanes of the at least one stage comprises an airfoil having leading and trailing edges joined by spaced-apart pressure and suction sides to provide an external airfoil surface; and

wherein the external airfoil surface is formed in substantial conformance with cross-section profiles of the airfoil defined by a set of Cartesian coordinates set forth in Table 1, the set of Cartesian coordinates provided by an axial coordinate scaled by a local axial chord, a circumferential coordinate scaled by the local axial chord, and a span location, wherein the local axial chord corresponds to a width of the airfoil between the leading and trailing edges at the span location.

12. The gas turbine engine according to claim 11 , wherein the span location corresponds to a distance from a rotation axis of the high pressure turbine.

13. The gas turbine engine according to claim 11 , wherein the external airfoil surface is formed in conformance with the cross-section profiles of the airfoil defined by the set of Cartesian coordinates set forth in Table 1 to a tolerance of ±0.050 inches (±1.27 mm).

14. The gas turbine engine according to claim 11 , wherein the external airfoil surface is a cold, uncoated airfoil surface at nominal definition.

15. The gas turbine engine according to claim 11 , wherein the at least one stage of turbine vanes includes one or two stages, and wherein the at least one of the turbine vanes is a first stage or a second stage HP turbine vane.

16. The gas turbine engine according to claim 15 , wherein the at least one stage of turbine vanes includes a single stage of HP turbine blades.

17. The gas turbine engine according to claim 11 , wherein the at least one stage of turbine vanes of the high pressure turbine comprises twenty-seven (27) turbine airfoils.

18. The gas turbine engine according to claim 11 , wherein the gas turbine engine is a turboprop or a turboshaft engine having 1 to 3 independently rotatable spools.

19. The gas turbine engine according to claim 14 , further comprising a coating over the external airfoil surface.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2022
From: MARINI, REMO; TARDIF, MARC; GILLESPIE, JASON
To: PRATT & WHITNEY CANADA CORP.
Reel/Frame 059569/0501 →
Cited By (1)
US 12,571,323