IP Library › Granted Patent US 10,731,861
Granted Patent B2
US 10,731,861 · App. 14/546,721 · Granted Aug 4, 2020

Dual fuel nozzle with concentric fuel passages for a gas turbine engine

Inventor: Barry C. Schlein (Wethersfield, CT)
Assignee: Raytheon Technologies Corporation
F23R3/286F23C7/004F23D17/002F23R3/14F23R3/30F23R3/36Y02T50/675
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Quick Facts
Patent No.
US 10,731,861
App. No.
14/546,721
Granted
Aug 4, 2020
Kind
B2
Abstract

A fuel nozzle is provided for a combustor of a gas turbine engine. The fuel nozzle includes an outer air swirler along an axis. The outer air swirler defines an outer annular air passage. An inner air swirler along the axis defines an annular fuel gas passage around the axis between the outer air swirler and the inner air swirler. An annular liquid passage is defined between the inner air swirler and an air inflow tube. A tube is within a housing to define an annular gas passage around the tube. The tube is operable to communicate a liquid into the annular liquid passage and the annular gas passage is operable to communicate a gas into the annular fuel gas passage.

Claims (41)

1. A fuel nozzle for a combustor of a gas turbine engine, comprising:

an outer air swirler along an axis, the outer air swirler defines an outer annular air passage;

an inner air swirler along the axis to define an annular fuel gas passage around the axis, the annular fuel gas passage further defined, at least in part, by a surface of a radially innermost wall of the outer air swirler and a surface of a radially outermost wall of the inner air swirler, wherein an annular liquid passage around the axis is defined, at least in part, by another surface of the radially outermost wall of the inner air swirler and an air inflow tube; and

a tube within a housing to define an annular gas passage around the tube, the tube operable to communicate a liquid into the annular liquid passage and the annular gas passage operable to communicate a gas into the annular fuel gas passage,

wherein the annular fuel gas passage includes a multiple of exits,

wherein each of the multiple of exits is at least partially defined by a vane within the annular fuel gas passage,

wherein the annular fuel gas passage annularly extends about the axis from the annular gas passage to the multiple of exits and the annular liquid passage annularly extends about the axis from the tube to an opposing end of the annular liquid passage, and

wherein the annular fuel gas passage extends between a first passage end at the annular gas passage and a second passage end opposite the first passage end, the second passage end being a distal end of the annular fuel gas passage, and wherein the multiple of exits form at least a portion of the second passage end and are disposed between and configured to fluidly connect the annular fuel gas passage and a combustion chamber of the combustor.

2. The fuel nozzle as recited in claim 1 , wherein the multiple of exits are located through a ramped portion of the radially innermost wall of the outer air swirler.

3. The fuel nozzle as recited in claim 1 , wherein the air inflow tube defines a central air passage.

4. The fuel nozzle as recited in claim 3 , further comprising a helical inflow vane within the air inflow tube.

5. The fuel nozzle as recited in claim 1 , wherein the annular fuel gas passage communicates about one hundred percent of the gas through the multiple of exits.

6. The fuel nozzle as recited in claim 1 , wherein the tube is secured within the housing with a seal at a first end section and at a second end section via one of a braze, weld, or threaded attachment.

7. The fuel nozzle as recited in claim 6 , wherein the seal is an O-ring seal, and wherein the second end section is opposed to the first end section.

8. The fuel nozzle of claim 1 , wherein a radially outermost wall of the outer air swirler extends axially past the radially outermost wall of the inner air swirler in a downstream direction and the radially outer wall of the inner air swirler extends axially past the air inflow tube in the downstream direction.

9. The fuel nozzle of claim 8 , wherein an end section of the radially outermost wall of the outer air swirler and an end section of the radially outermost wall of the inner air swirler are oriented radially inward toward the axis.

10. The fuel nozzle of claim 1 , wherein the vane extends from an end section of the radially innermost wall of the outer air swirler.

11. The fuel nozzle of claim 1 , wherein the vane is part of a plurality of vanes disposed within the annular fuel gas passage and extending between and connecting an inner radial surface and an outer radial surface of the annular fuel gas passage, each vane of the plurality of vanes circumferentially spaced from each adjacent vane of the plurality of vanes and defining an exit of the multiple of exits between each vane and each adjacent vane.

12. A fuel nozzle for a combustor of a gas turbine engine, comprising:

an outer air swirler along an axis, the outer air swirler defines an outer annular air passage; and

an inner air swirler along the axis to define an annular fuel gas passage around the axis, the annular fuel gas passage further defined, at least in part, by a surface of a radially innermost wall of the outer air swirler and a surface of a radially outermost wall of the inner air swirler, wherein an annular liquid passage around the axis is defined, at least in part, by another surface of the radially outermost wall of the inner air swirler and an air inflow tube, and the annular fuel gas passage includes a multiple of exits, wherein each of the multiple of exits is at least partially defined by a vane within the annular fuel gas passage, wherein each vane is defined by an airfoil wall surface between a leading edge and a trailing edge to define a concave shaped portion to form a pressure side and a convex shaped portion to form a suction side, wherein each vane is angled with respect to the axis by an angle between fifty and sixty degrees such that the trailing edge, the outer air swirler, and the inner air swirler form a skewed quadrilateral,

wherein the annular fuel gas passage annularly extends about the axis from an annular gas passage to the multiple of exits and the annular liquid passage annularly extends about the axis from a tube to an opposing end of the annular liquid passage, and

wherein the annular fuel gas passage extends between a first passage end at the annular gas passage and a second passage end opposite the first passage end, the second passage end being a distal end of the annular fuel gas passage, and wherein the multiple of exits form at least a portion of the second passage end and are disposed between and configured to fluidly connect the annular fuel gas passage and a combustion chamber of the combustor.

13. The fuel nozzle as recited in claim 12 , wherein the tube is disposed within a housing to define the annular gas passage around the tube, wherein the tube is operable to communicate a liquid into the annular liquid passage and the annular gas passage is operable to communicate a gas into the annular fuel gas passage.

14. The fuel nozzle as recited in claim 12 , wherein the multiple of exits are located through a ramped portion of the radially innermost wall of the outer air swirler.

15. The fuel nozzle as recited in claim 12 , wherein the annular fuel gas passage communicates about one hundred percent of the gas through the multiple of exits.

16. A method of directing a fuel gas and a liquid through a fuel nozzle and into a combustor of a gas turbine engine, the method comprising:

directing an airflow through an outer annular air passage around an axis;

directing the fuel gas through an annular fuel gas passage around the axis and radially within the outer annular air passage;

directing the liquid though an annular liquid passage around the axis and radially within the annular fuel gas passage; and

directing the fuel gas through a multiple of exits;

wherein each of the multiple of exits is at least partially defined by a vane within the annular fuel gas passage,

wherein each vane is defined by an airfoil wall surface between a leading edge and a trailing edge to define a concave shaped portion to form a pressure side and a convex shaped portion to form a suction side,

wherein each vane is angled with respect to the axis by an angle between fifty and sixty degrees such that the trailing edge, the outer air swirler, and the inner air swirler form a skewed quadrilateral,

wherein a tube within a housing defines an annular gas passage around the tube, the tube in communication with the annular liquid passage and the annular gas passage in communication with the annular fuel gas passage,

wherein the annular fuel gas passage annularly extends about the axis from the annular gas passage to the multiple of exits and the annular liquid passage annularly extends about the axis from the tube to an opposing end of the annular liquid passage, and

wherein the annular fuel gas passage extends between a first passage end at the annular gas passage and a second passage end opposite the first passage end, the second passage end being a distal end of the annular fuel gas passage, and wherein the multiple of exits form at least a portion of the second passage end and are disposed between and configured to fluidly connect the annular fuel gas passage and a combustion chamber of the combustor.

17. The method as recited in claim 16 , further comprising:

directing an airflow through a central passage radially within the annular liquid passage; and

swirling the airflow within the central passage.

18. The method as recited in claim 16 , further comprising directing the liquid into the annular liquid passage through the tube shielded by the fuel gas in communication with the annular fuel gas passage.

Assignments (4)
CHANGE OF NAME Recorded Jul 27, 2023
From: RAYTHEON TECHNOLOGIES CORPORATION
To: RTX CORPORATION
Reel/Frame 064714/0001 →
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 Nov 19, 2014
From: SCHLEIN, BARRY C.
To: UNITED TECHNOLOGIES CORPORATION
Reel/Frame 034204/0825 →
Continuity (2)
Provisional Application 61905553 · Nov 18, 2013
Related Publication 20150253010A1 · Sep 10, 2015
Cited By (12)
US 12,228,282 US 12,234,988 US 12,326,256 US 12,492,819 US 12,571,539 US 12,590,561 US 12,590,702 US 12,601,485 US 12,613,036 US 12,638,184 US 12,644,415 US 12,655,980