SEALING SYSTEM FOR OPTICAL SENSORS IN GAS TURBINE ENGINES
20170219424 ยท 2017-08-03
Inventors
Cpc classification
G01J5/0806
PHYSICS
F01D17/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01J5/045
PHYSICS
G01J1/0411
PHYSICS
F05D2240/55
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01J5/0893
PHYSICS
F01D11/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A sealing system (20) for an optical sensor of a turbine engine that diverts and exhaust seal leakage away from the seal (22, 24) to prevent ingestion of humid air through the seal (22, 24) is disclosed. The sealing system (20) may include inner and outer optical housings (26, 28) with first and second seals (22, 24) positioned there between separating inner and outer optical housings (26, 28) radially. The sealing system (20) may include one or more leakage manifolds (30) positioned between the first and second seals (22, 24) and containing one or more manifold rings (32). The manifold ring (32) may be positioned between and in contact with the first and second seals (22, 24) enabling the first and second seals (22, 24) to form a double seal. The manifold ring (32) may also be configured to capture leakage air that has seeped past the first seal (22) and exhaust that leakage air through one or more exhaust vents (34) in the outer optical housing (28) before leaking through the sealing system (20).
Claims
1-11. (canceled)
12. A sealing system for an optical sensor, comprising: an outer optical housing having a generally tubular outer configuration; an inner optical housing positioned within an inner chamber in the outer optical housing; a first seal extending between the inner optical housing and the outer optical housing; a second seal extending between the inner optical housing and the outer optical housing and separated laterally from the first seal; at least one exhaust vent extending through the outer optical housing; and a manifold ring positioned between the inner optical housing and the outer optical housing and circumferentially around the inner optical housing, wherein the manifold ring includes at least one leak port extending radially outward through the manifold ring.
13. The sealing system of claim 12, further comprising a leakage manifold positioned at least partially between the inner and outer optical housings, wherein the manifold ring is positioned within the leakage manifold.
14. The sealing system of claim 13, wherein the leakage manifold is cylindrical.
15. The sealing system of claim 12, wherein the manifold ring has a consistent cross-sectional area.
16. The sealing system of claim 12, wherein the at least one exhaust vent is formed from a plurality of holes.
17. The sealing system of claim 12, wherein the at least one exhaust vent is formed from at least one slot.
18. The sealing system of claim 17, wherein the at least one exhaust vent is a plurality of slots.
19. The sealing system of claim 12, wherein the manifold ring has a concave inner surface, wherein the concave inner surface of the manifold ring extends circumferentially around the manifold ring.
20. The sealing system of claim 12, wherein the manifold ring has a concave outer surface, wherein the concave outer surface of the manifold ring extends circumferentially around the manifold ring.
21. The sealing system of claim 12, wherein a high pressure side surface of the manifold ring is in contact with a side surface of the first seal and a low pressure side surface of the manifold ring is in contact with a side surface of the second seal.
22. The sealing system of claim 12, wherein the at least one leak port is positioned along a centerline of the manifold ring.
23. A sealing system for an optical sensor, comprising: an outer optical housing having a generally tubular outer configuration; an inner optical housing positioned within an inner chamber in the outer optical housing; a first seal extending between the inner optical housing and the outer optical housing; a second seal extending between the inner optical housing and the outer optical housing and separated laterally from the first seal; at least one exhaust vent extending through the outer optical housing; a manifold ring positioned between the inner optical housing and the outer optical housing and circumferentially around the inner optical housing, wherein the manifold ring includes at least one leak port extending radially outward through the manifold ring; and a leakage manifold positioned at least partially between the inner and outer optical rings, wherein the manifold ring is positioned within the leakage manifold and the leakage manifold is cylindrical.
24. The sealing system of claim 23, wherein the manifold ring has a consistent cross-sectional area.
25. The sealing system of claim 23, wherein the at least one exhaust vent is formed from a plurality of holes.
26. The sealing system of claim 23, wherein the at least one exhaust vent is formed from at least one slot.
27. The sealing system of claim 23, wherein the manifold ring has a concave inner surface, wherein the concave inner surface of the manifold ring extends circumferentially around the manifold ring, and wherein the manifold ring has a concave outer surface, wherein the concave outer surface of the manifold ring extends circumferentially around the manifold ring.
28. The sealing system of claim 23, wherein the at least one leak port is positioned along a centerline of the manifold ring.
29. A sealing system for an optical sensor, comprising: an outer optical housing having a generally tubular outer configuration; an inner optical housing positioned within an inner chamber in the outer optical housing; a first seal extending between the inner optical housing and the outer optical housing; a second seal extending between the inner optical housing and the outer optical housing and separated laterally from the first seal; at least one exhaust vent extending through the outer optical housing; a manifold ring positioned between the inner optical housing and the outer optical housing and circumferentially around the inner optical housing, wherein the manifold ring includes at least one leak port radially extending through the manifold ring; a leakage manifold positioned at least partially between the inner and outer optical rings, wherein the manifold ring is positioned within the leakage manifold; wherein the manifold ring is positioned within the leakage manifold; and wherein the manifold ring has a concave inner surface and a concave outer surface, wherein the concave inner surface and the concave outer surface of the manifold ring extends circumferentially around the manifold ring.
30. The sealing system of claim 29, wherein a high pressure side surface of the manifold ring is in contact with a side surface of the first seal and a low pressure side surface of the manifold ring is in contact with a side surface of the second seal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
[0010]
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DETAILED DESCRIPTION OF THE INVENTION
[0017] As shown in
[0018] As shown in
[0019] The sealing system 20 may also include one or more exhaust vents 34 extending through the outer optical housing 28 which provides an exhaust pathway for leakage fluids captured within the leakage manifold 30 together with the leak port 44 in the manifold ring 32. The exhaust vents 34, as shown in
[0020] In at least one embodiment, as shown in
[0021] The sealing system 20 may include a pair of seals 22, 24 extending between the inner optical housing 26 and the outer optical housing 28. The first seal 22 may be separated laterally from the second seal 24, as shown in
[0022] As shown in
[0023] In at least one embodiment, the manifold ring 32 of the sealing system 20 may be positioned within the leakage manifold 30 and may be utilized to keep the first and second seals 22, 24 and pressed against lateral surfaces of the outer optical housing 28 and against the inner optical housing 26 to form a double seal. The manifold ring 32 may be positioned radially outward of the inner optical housing 26 or the optical component 40. The manifold ring 32 may be positioned between the inner optical housing 26 and the outer optical housing 28. In another embodiment, the manifold ring 32 may be positioned between the optical component 40 and the outer optical housing 28. As shown in
[0024] The manifold ring 32 may include one or more leak ports 44 that extend through the manifold ring 32. The manifold ring 32 may include a concave inner surface 54 and a concave outer surface 56. The concave inner and outer surfaces 54, 56 form the inner and outer leakage capture chambers 36 and 38 while enabling a high pressure side surface 58 and a low pressure side surface 60 of the manifold ring 32 to extend a width of the first and second seals 22, 24, respectively to engage a side surface 62 of the first seal 22 and a side surface 64 of the second seal 24. The manifold ring 32, as shown in
[0025] While
[0026] During operation of the turbine engine, air flows leaking from the high pressure side 52 of the turbine engine may occur. The sealing system 20 may allow a minor leakage of the air flows to pass through the first seal 22 located on the high pressure side 52 of the turbine engine. Once the leakage air flows past the first seal 22, the air collected in the inner or outer leakage capture chambers 36, 38 of the leakage manifold 30. The leakage air collected in the inner leakage capture chamber 36 may flow through one or more leak ports 44 of the manifold ring 32 and into outer leakage capture chamber 38 of the leakage manifold 30. Once the air flows have entered the outer leakage capture chamber 38 of the leakage manifold 30, the air flows may be exhausted through the outer optical housing 28 via the one or more exhaust vents 34, which maintains an atmospheric pressure zone across the first seal 22. As a result, leakage across the first seal 24 may be prevented from entering into the optical sensing portion 48 of the turbine engine 201 and creating problems leading to false trips of the turbine engine.
[0027] The foregoing is provided for purposes of illustrating, explaining, and describing embodiments of this invention. Modifications and adaptations to these embodiments will be apparent to those skilled in the art and may be made without departing from the scope or spirit of this invention.