IP Library › Granted Patent US 9,951,633
Granted Patent B2
US 9,951,633 · App. 14/518,009 · Granted Apr 24, 2018

Reduced length transition ducts

Inventor: Wesley K. Lord (South Glastonbury, CT)
Assignee: UNITED TECHNOLOGIES CORPORATION
F01D9/02F01D9/023F01D9/047F02C3/107F05D2240/12F05D2250/38Y02T50/671
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,951,633
App. No.
14/518,009
Granted
Apr 24, 2018
Kind
B2
Abstract

A transition duct defining an airflow pathway between a low pressure compressor and a high pressure compressor of a gas turbine engine is disclosed. The transition duct may comprise an inner wall and an outer wall located radially outward of the inner wall with respect to a central axis of the gas turbine engine. It may further comprise a first bend configured to turn the airflow radially inward with respect to the central axis, and a turning vane located at the first bend between the inner wall and the outer wall. The turning vane may be configured to assist the first bend in turning the airflow radially inward.

Claims (46)

1. A transition duct defining an airflow pathway between a low pressure compressor and a high pressure compressor of a gas turbine engine, the transition duct comprising:

an inner wall;

an outer wall located radially outward of the inner wall with respect to a central axis of the gas turbine engine;

a first bend configured to turn an airflow of the airflow pathway radially inward with respect to the central axis;

a turning vane located at a midway between the inner wall and the outer wall and at the first bend between the inner wall and the outer wall, the turning vane being configured to assist the first bend in turning the airflow radially inward along a radially inward direction, the turning vane having a trailing edge;

a second bend located downstream of the first bend, and wherein the second bend is configured to turn the airflow from the radially inward direction towards an axial direction with respect to the central axis; and

a second turning vane located at the second bend between the inner wall and the outer wall, and wherein the second turning vane is configured to assist the second bend in turning the airflow towards the axial direction, the second turning vane having a leading edge, wherein the trailing edge and the leading edge are aligned along the radially inward direction.

2. The transition duct of claim 1 , wherein the first bend is configured to turn the airflow radially inward by a turning angle of between substantially 10° and substantially 90°.

3. The transition duct of claim 2 , wherein the turning vane has a camber of between substantially 10° and substantially 90°.

4. The transition duct of claim 2 , wherein the turning vane is located at a midway between the inner wall and the outer wall.

5. The transition duct of claim 3 , wherein the transition duct further comprises a plurality of struts extending radially from the inner wall to the outer wall, and wherein the turning vane is mounted on at least one of the plurality of struts.

6. The transition duct of claim 1 , wherein the second turning vane has a camber of between substantially 10° and substantially 90°.

7. The transition duct of claim 6 , wherein the second turning vane is located substantially midway between the inner wall and the outer wall.

8. The transition duct of claim 1 , wherein the transition duct further comprises a plurality of struts extending radially from the inner wall to the outer wall, and wherein the second turning vane is mounted on at least one of the plurality of struts.

9. A gas turbine engine, comprising:

a fan section having a fan operably coupled to a low pressure turbine via a reduction gear; and

a core engine located downstream of the fan section, the core engine comprising:

a low pressure compressor operably coupled to the low pressure turbine, wherein the reduction gear causes the fan to rotate slower than the low pressure compressor,

a high pressure compressor located downstream of the low pressure compressor,

a transition duct defining an airflow pathway between the low pressure compressor and the high pressure compressor, the transition duct comprising:

an inner wall,

an outer wall located radially outward of the inner wall with respect to a central axis of the gas turbine engine,

a first bend configured to turn an airflow of the airflow pathway radially inward with respect to the central axis,

a turning vane located at a midway between the inner wall and the outer wall and at the first bend between the inner wall and the outer wall, the turning vane being configured to assist the first bend in turning the airflow radially inward along a radially inward direction, the turning vane having a trailing edge,

a second bend located downstream of the first bend, and wherein the second bend is configured to turn the airflow from the radially inward direction towards an axial direction with respect to the central axis;

a second turning vane located at the second bend between the inner wall and the outer wall, and wherein the second turning vane is configured to assist the second bend in turning the airflow towards the axial direction, the second turning vane having a leading edge, wherein the trailing edge and the leading edge are aligned along the radially inward direction; and

a combustor located downstream of the compressor section, and a turbine section located downstream of the combustor.

10. The transition duct of claim 1 , wherein the first bend is configured to turn the airflow radially inward by a turning angle of between substantially 10° and substantially 90°.

11. The transition duct of claim 2 , wherein the turning vane has a camber of between substantially 10° and substantially 90°.

12. The gas turbine engine of claim 11 , wherein the transition duct further comprises a plurality of struts extending radially from the inner wall to the outer wall, and wherein the turning vane is mounted on at least one of the plurality of struts.

13. The transition duct of claim 1 , wherein the second turning vane has a camber of between substantially 10° and substantially 90°.

14. The transition duct of claim 6 , wherein the second turning vane is mounted substantially midway between the inner wall and the outer wall.

15. A gas turbine engine, comprising:

a fan section; and

a core engine located downstream of the fan section, the core engine comprising:

a compressor section,

a combustor located downstream of the compressor section,

a high pressure turbine located downstream of the combustor,

a low pressure turbine located downstream of the high pressure turbine, and

a transition duct defining a gas flow pathway between the high pressure turbine and the low pressure turbine, the transition duct comprising:

an inner wall,

an outer wall located radially outward of the inner wall with respect to a central axis of the gas turbine engine,

a first bend configured to turn an airflow of the airflow pathway radially outward with respect to the central axis, and

a turning vane located at a midway between the inner wall and the outer wall and at the first bend between the inner wall and the outer wall, the turning vane being configured to assist the first bend in turning the gas flow radially outward along a radially outward direction, the turning vane having a trailing edge;

a second bend located downstream of the first bend, and wherein the second bend is configured to turn the airflow from the radially outward direction towards an axial direction with respect to the central axis; and

a second turning vane located at the second bend between the inner wall and the outer wall, and wherein the second turning vane is configured to assist the second bend in turning the airflow towards the axial direction, the second turning vane having a leading edge, wherein the trailing edge and the leading edge are aligned along the radially outward direction.

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 Oct 20, 2014
From: LORD, WESLEY K.
To: UNITED TECHNOLOGIES CORPORATION
Reel/Frame 033978/0789 →
Continuity (2)
Provisional Application 61939355 · Feb 13, 2014
Related Publication 20150300253A1 · Oct 22, 2015