Gas turbine engine clearance control
10253644 ยท 2019-04-09
Assignee
Inventors
- Ryan Edward LeBlanc (Glastonbury, CT, US)
- Jordan T. Wall (Hartford, CT, US)
- Matthew E. Bintz (West Hartford, CT, US)
Cpc classification
F02C3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D11/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/246
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/231
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D11/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D9/041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D11/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A gas turbine engine includes first and second structures secured to one another at a bolted flange joint. A seal is supported by a third structure. A cover is arranged over the bolted flange joint and discrete from the first and second structures. The cover provides a seal land that engages the piston seal and protects the first structure from the adverse thermal environment.
Claims
1. A gas turbine engine comprising: first and second structures secured to one another at a bolted flange joint; a seal supported by a third structure; and a cover arranged over the bolted flange joint and discontinuous from the first, second, and third structures, the cover provides a seal land that engages the seal.
2. The gas turbine engine according to claim 1, wherein the second structure is a stator cluster, and the third structure is an exit guide vane.
3. The gas turbine engine according to claim 2, wherein the stator cluster includes a stator vane integral with a blade outer air seal.
4. The gas turbine engine according to claim 2, comprising a combustor arranged downstream from and adjacent to the exit guide vane.
5. The gas turbine engine according to claim 1, wherein the first structure is a support secured to an engine static structure at another bolted flange joint, the cover includes a first end secured at the other bolted flange joint.
6. The gas turbine engine according to claim 5, wherein the cover includes a second end opposite the first end, the second end includes the seal land.
7. A gas turbine engine comprising: first and second structures secured to one another at a bolted flange joint; a seal supported by a third structure; and a cover arranged over the bolted flange joint and discontinuous from the first, second and third structures, the cover provides a seal land that engages the seal, and the cover seals and separates first, second and third cavities from one another.
8. The gas turbine engine according to claim 7, wherein the first cavity is provided between the cover and the bolted flange joint.
9. The gas turbine engine according to claim 7, wherein the third cavity is provided between the second and third structures and the seal is a piston seal.
10. The gas turbine engine according to claim 7, wherein the cover includes a heat shield extending in a direction opposite the seal land, the second structure includes a radially extending flange, and the heat shield seals against the flange.
11. The gas turbine engine according to claim 10, wherein the seal land and the heat shield generally form a T-shape, and the heat shield provides a U-shape, the heat shield includes a radially extending leg and a radially extending lip joined by an axially extending wall, the lip seals against the flange.
12. The gas turbine engine according to claim 7, wherein the second structure is a stator cluster, and the third structure is an exit guide vane.
13. A gas turbine engine comprising: first and second structures secured to one another at a bolted flange joint; a seal supported by a third structure; a cover arranged over the bolted flange joint and discontinuous from the first, second and third structures, the cover provides a seal land that engages the seal; the cover includes an integral heat shield that seals against the second structure; wherein the cover seals and separates a first, a second and a third cavity from one another.
14. The gas turbine engine according to claim 13, wherein the second structure is a stator cluster, and the third structure is an exit guide vane.
15. The gas turbine engine according to claim 14, wherein the stator cluster includes a stator vane integral with a blade outer air seal.
16. The gas turbine engine according to claim 14, comprising a combustor arranged downstream from and adjacent to the exit guide vane.
17. The gas turbine engine according to claim 13, wherein the first structure is a support secured to an engine static structure at another bolted flange joint, the cover includes a first end secured at the other bolted flange joint.
18. The gas turbine engine according to claim 17, wherein the cover includes a second end opposite the first end, the second end includes the heat shield extending in a direction opposite a seal land, the second structure includes a radially extending flange, and the heat shield seals against the flange.
19. The gas turbine engine according to claim 18, wherein the seal land and the heat shield generally form a T-shape, and the heat shield provides a U-shape, the heat shield includes a radially extending leg and a radially extending lip joined by an axially extending wall, the lip seals against the flange.
20. A gas turbine engine comprising: first and second structures connected at a joint and extending at least partially in opposing first and second directions; a third structure that extends from the first structure to the second structure over the joint to form a cavity therebetween; a portion of the third structure, exterior to the cavity and facing the first direction, forming a seal land; and a fourth structure that is discrete from the third structure and supports a seal that engages the seal land wherein the third structure is discontinuous from the first, second and fourth structures.
21. The gas turbine engine according to claim 20, wherein the first structure is a support secured to an engine static structure, and the second structure is a stator cluster.
22. The gas turbine engine according to claim 20, wherein the third structure is a cover.
23. The gas turbine engine according to claim 20, wherein the fourth structure is an exit guide vane, and the seal is a piston seal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The disclosure can be further understood by reference to the following detailed description when considered in connection with the accompanying drawings wherein:
(2)
(3)
(4)
(5) The embodiments, examples and alternatives of the preceding paragraphs, the claims, or the following description and drawings, including any of their various aspects or respective individual features, may be taken independently or in any combination. Features described in connection with one embodiment are applicable to all embodiments, unless such features are incompatible.
DETAILED DESCRIPTION
(6) Referring to
(7) The illustrated exhaust liner assembly 22 includes a liner 24 (for example, a first or second duct) that defines an inner surface exposed to the hot exhaust gasses 28. The liner 24 is supported by and radially within a duct 26 (for example, a first or second duct). There is an annular space 30 between the liner 24 and the duct 26 for a cooling airflow. The illustrated exhaust liner assembly 22 includes a first section 32, a second section 34, and third section 36, which are movable relative to each other to provide a thrust vectoring function.
(8) Referring to
(9) As illustrated, the stator cluster 42 is supported relative to the engine static structure 40 by forward and aft supports 48, 50 at bolted joints. An array of exit guide vanes 56 is arranged downstream from the blades 52 and upstream from a combustor 58. Due to the position of the stator cluster 42, which is within close proximity to the extreme temperatures of the combustor 58, it is difficult to maintain tight running clearances between the blade outer air seal 46 and the tips 54.
(10) Referring to
(11) This bolted flange joint is in especially close proximity to high temperatures from hot gases that might leak from the gas flow path of the compressor section. These high temperatures can adversely affect the radial position of the blade outer air seal 56 and, therefore, the ability of the blade outer air seal to seal relative to the tips 54. To this end, an annular cover 68 is arranged over the bolted joint to provide a first cavity 88 that protects the bolted flange joint from high temperatures.
(12) As illustrated, the cover 68 includes a first end 70 secured to the case flange 60 and aft support 50 by the first fastener assembly 64. The first end 70 provides a snap fit with the aft support 50, which provides a seal between the cover 68 and the radially outer end of the aft support 50. The cover 68, which is generally C-shaped, extends to a second end 72 opposite the first end.
(13) An annular groove 84 is provided in the exit guide vane 56. A piston seal 86 is arranged in the groove 84 and seals against the second end 72. In an example, the piston seal 86 seals against a seal land 82 extending axially aftward from the second end 72. A transverse, radially extending wall 69 is axially aligned with the piston seal 86 in the example embodiment.
(14) Said another way, first and second structures, the aft support 50 and the stator flange 62, are connected at a joint and extend at least partially in opposing first and second directions. A third structure, the cover 68, extends from the first structure to the second structure over the joint to form the cavity 88 therebetween. A portion of the third structure, exterior to the cavity 88 and facing the first direction, form a seal land 82. A fourth structure, the exit guide vane 56, supports the piston seal 86 and engages the seal land 82.
(15) The wall 69 provides a generally T-shaped geometry with the seal land 82 and a shield 74, which also is integrated with the cover 68. The shield 74, which is generally U-shaped in the example embodiment, includes a radially inwardly extending annular leg 76 from which a forwardly axially extending wall 78 extends. An annular lip 80 extends radially outward from the axial wall 78 and seals against the radially extending stator flange 62.
(16) A forward side of the aft support 50 is relative cool compared to the aft side. The only air acting on the aft support 50 is the cooler air from the adjacent bleed cavity, which is forward of the aft support 50 and first and second fastener assembly 64, 66. The cover 68 protects the aft support 50 and the inner bolted flange joint by creating the dead, or enclosed, first cavity 88 between the cover 68 and the aft support 50. A second cavity 90 is provided on an opposite side of the cover 68 from the first cavity 88 and the aft support 50. The heat shield 74 provides a third cavity 92 between the stator cluster 42 and the exit guide vane 56.
(17) The integrated heat shield 74, seal land 82 and cover 68 (collectively, the cover) enables lower temperature capable materials to be used at the bolted flange joint, which is optimal compared with other known shield arrangements. The cover 68 can be constructed from a thinner-walled material than the aft support, which saves weight. The disclosed cover configuration blocks the aft support 50 from hot air that recirculates around the top of the exit guide vane 56.
(18) It should also be understood that although a particular component arrangement is disclosed in the illustrated embodiment, other arrangements will benefit herefrom. Although particular step sequences are shown, described, and claimed, it should be understood that steps may be performed in any order, separated or combined unless otherwise indicated and will still benefit from the present invention. Furthermore, although the different examples have specific components shown in the illustrations, embodiments of this invention are not limited to those particular combinations. It is possible to use some of the components or features from one of the examples in combination with features or components from another one of the examples. In addition, although an example embodiment has been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of the claims. For that reason, the following claims should be studied to determine their true scope and content.