GB2076069A - Supporting and sealing structure for a guide vane array of a gas turbine engine - Google Patents

Supporting and sealing structure for a guide vane array of a gas turbine engine Download PDF

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Publication number
GB2076069A
GB2076069A GB8106159A GB8106159A GB2076069A GB 2076069 A GB2076069 A GB 2076069A GB 8106159 A GB8106159 A GB 8106159A GB 8106159 A GB8106159 A GB 8106159A GB 2076069 A GB2076069 A GB 2076069A
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United Kingdom
Prior art keywords
radially
ring
extending
nozzle
gas turbine
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Granted
Application number
GB8106159A
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GB2076069B (en
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Avco Corp
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Avco Corp
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Publication of GB2076069A publication Critical patent/GB2076069A/en
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Publication of GB2076069B publication Critical patent/GB2076069B/en
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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01DNON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
    • F01D9/00Stators
    • F01D9/02Nozzles; Nozzle boxes; Stator blades; Guide conduits, e.g. individual nozzles
    • F01D9/04Nozzles; Nozzle boxes; Stator blades; Guide conduits, e.g. individual nozzles forming ring or sector
    • F01D9/041Nozzles; Nozzle boxes; Stator blades; Guide conduits, e.g. individual nozzles forming ring or sector using blades

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Turbine Rotor Nozzle Sealing (AREA)

Abstract

The guide vanes 16 are fixedly supported at their tip portions to an outer shroud 12 while the root portion 20 of each vane is connected to a segment 32 of a radially inner, segmented shroud. Each segment 20 is, in turn, connected via a slip fit interconnection permitting thermal expansion to an L-shaped radially inner ring support structure 40. A spring 70 extends between the segment 20 and the base 42 of the L-shaped support to form a flexible coupling, while the remaining portion of the L-shaped support defines a pressure dam to reduce leakage through the flexible coupling. <IMAGE>

Description

SPECIFICATION Partially segmented supporting and sealing structure for a guide vane array of a gas turbine engine BACKGROUND OF THE INVENTION The present invention relates to a turbine nozzle as employed in a multi-stage turbine of a gas turbine engine, and more particularly, a supporting and sealing structure for an array of radially extending guide vanes of a turbine nozzle wherein the root ends of the guide vanes are flexibly connected by a segmented inner shroud, and which supporting structure includes a pressure dam to minimize the amount of leakage introduced by providing flexibility in the nozzle assembly.
In a multi-stage turbine of a gas turbine engine, stationary vane assemblies are inserted between the rotor wheels, as well as at the entrance and exit of the turbine unit. In the operation of the gas turbine engine, the stationary vane assemblies function to alter the static pressure and change the velocity of the high pressure, high temperature gases flowing through the turbine. Heretofore, in order to insure the structural integrity of a vane assembly as it is subjected to thermal excursions of the components of the assembly during transient and steady state operating conditions of the gas turbine engine, it has been common to cast the entire nozzle assembly in one piece. The one piece assembly included an outer unitary shroud, an inner unitary shroud, and the array of radially extending guide vanes.With this prior art construction, it has been found that during transient and steady state operation of the gas turbine engine, the temperature differentials between the thin, fast responding vanes and the slower, more massive shoud rings, causes a differential thermal growth or thermal gradient to develop within the nozzle assembly as well as different temperature levels throughout the nozzle assembly. The result of the differential thermal gradients causes differential thermal excursions of the parts of the nozzle assembly, thereby leading to the development of local stresses and cracks in the interconnections between the vanes and the shrouds.In addition, the inner shroud of a stationary turbine nozzle is usually sealed by a sheet metal member which is usually brazed to the inner shroud, and it has been found that the thermal excursions of the parts of the turbine nozzle have caused distortion and separation of the brazed connections due to the thermal loading on the sheet metal pieces, thereby resulting in pressure leakage through the vane assembly.
Accordingly, it is an object of the subject invention to overcome the shortcomings of the prior art turbine nozzle assemblies and to provide a new and improved supporting and sealing structure for an array of radially extending guide vanes of a nozzle of a gas turbine engine, which supporting and sealing structure provides a flexible coupling between the individual vanes and the inner shroud.
It is another object of the present invention to provide a new improved supporting and sealing structure for an array of radially extending guide vanes of a gas turbine engine wherein the flexible coupling between the root ends of the vanes and the inner segmented shroud is sealed by a flexipipe, pressure dam to minimize leakage through the flexible coupling.
It is a further object of the present invention to provide a new and improved supporting and sealing structure for an array of radially extending guid vanes of a nozzle of a gas turbine engine including means four maintaining the radial and axial alignment of the vanes under trensient and steady state operating conditions of the gas turbine engine.
SUMMARY OF THE INVENTION The nozzle of the subject invention is generally embodied in a gas turbine engine, and includes a radially inner shroud ring, a radially outer shroud ring, and a plurality of radially extending vane structures respectively disposed between the radially inner and the radially outer shroud rings.
Each vane is firmly secured at its tip end to the radially outer shroud ring, while the root end of each vane is secured to the inner shroud ring by an inner support and sealing structure. The latter includes a radially inner ring structure of generally L-shaped cross-section including a generally cylindrical base, and a radially outwardly extending disc. The root end of each vane is connected to a structural segment which forms a portion of a plurality of segments defining a segmented image. Each structural segment includes a radially inwardly extending lug which is adapted to engage a cooperating slot which extends in two mutually perpendicular directions on the radially outwardly extending disc of the inner ring structure to define a slip fit connection. The latter functions to retain the inner support and sealing structure concentric to the outer shroud ring.The slip fit connection between the structural segments and the disc also functions to define a pressure dam for minizing pressure leakage through the flexible coupling of the vanes to the inner shroud. A spring of generally C-shaped cross-section preferably extends between each segment and the base of the L-shaped inner ring structure, thereby providing a flexible restraining interconnection between the inner shroud and the vanes. The new and improved sealing and supporting structure of the subject invention provides flexibility in the nozzle assembly, thereby eliminating the development of local stresses within the nozzle assembly, while minimizing the amount of leakage introduced by providing flexibility in the nozzle assmbly. The flexibility of the subject invention is obtained by the provision of the segmented inner shroud and the springs.
The pressure dam is effective to reduce leakage, and by virtue of the slip fit interconnection between the structural segments and the disc portion of the inner ring structure, the pressure dam is maintained during thermal excursions of the components of the nozzle assembly, during both transient and steady state operating conditions of the turbine engine.
The invention also provides a supporting and sealing structure for an array of radially extending guide vanes of a nozzle of a gas turbine engine, said supporting and sealing structure comprising: a radially outer shroud means rigidly connected to the radially outer tip portions of the vanes; and radially inner shroud means flexibility connected to the radially inner root portions of the vanes to define a flexible coupling to accommodate radial excursions and reduce the stress levels of the vanes during thermal loading, said inner shroud means including a pressure dam to reduce leakage through said flexible coupling connection.
Description of the Drawings Other objects and advantages of the invention will become apparent from a reading of the following detailed description taken in conjunction with the drawings in which: Fig. 1 is a front elevational view of an embodiment of a nozzle assembly of the subject invention; Fig. 2 is a cross-sectionai view taken along line 2-2 in Fig. 1; Fig. 3 is a rear elevational view of the nozzle assembly of the subject invention; and Fig. 4 is a cross-sectional view taken along line 4in in Fig. 2.
Detailed Description of the Preferred Embodiment Referring to Figs. 1, 2, and 3, the stationary turbine nozzle assembly is generally designated by the numeral 10 and basically comprises a radially outer shroud ring 12, a radially inner shroud ring 14, and an array of radially extending guide vanes 16 disposed between rings 12 and 14. The radially outer tip portion 1 8 of each guide vane 1 6is secured to the inner surface of the outer shroud ring 12 by a rigid connection, such as by brazing or casting. On the other hand, the root portion 20 of each guide vane 1 6 is flexibility connected to the inner shroud by means of the supporting and sealing structure of the subject invention.The supporting and sealing structure enables the guide vanes 16 to undergo thermal excursions during transient and steady state operation of the gas turbine engine, without resulting in distortion or the development of local stresses on the assembly 10 which could lead to the development of local cracks in the assembly.
The supporting and sealing structure includes a segments ring 30 which is defined by a plurality of individual segments 32 arranged concentrically with the radially outer shroud ring 12. Each segment 32 is connected to the root end 20 of a said radially extending guide vane 1 6. As illustrated in Figs. 2, 3, and 4, depending from each segment 32 and extending radially inward of the segment 32, is a T-shaped lug portion 34.
Each T-shaped lug 34 includes a leg portion 36 which is aligned with the longitudinal axis of the gas turbine engine, and a transverse bar segment 38 extending orthagonal to the longitudinal axis of the engine. The supporting and sealing structure 40 further includes a radially inner ring support structure 40 which is generally L-shaped in crosssection (see Fig. 2) and includes a generally cylindrical base 42 and a radially outward extending disc portion 44.Secured to the disc portion 44 is an angled ring member 50 which includes an array of radially extending cut-out 52 so as to define a generally scalloped configuration, as viewed from the rear of the assembly 10 (see Fig. 3). The angled cross-section of the ring 50 (see Figs. 2 and 4) results in a circumferential space or slot 60 extending about the radially outer diameter of the disc portion 44 of the ring support structure 40. As illustrated, the circumferential slot 60 is downstream of the disc portion 44.
The leg portions 36 of the T-shaped lugs 34 are respectively slidably mounted in the cut-outs 52, while the transverse bar segment 38 of each lug 34 is slidably mounted in the space 60 defined between the disc 44 and the angled ring 50 (see Figs. 2 and 4). By this arrangement, a slip fit interconnection is defined between each segment 32 and the inner ring support structure 40, with the slip fit connection effectively maintaining the continuity between the segmented ring 30 and the inner support ring 40 so as to define a pressure dam for minimizing pressure leakage through the flexible coupling of the supporting and sealing structure.It is noted that the pressure dam is maintained throughout the various transient and steady state operating conditions of the gas turbine engine, during which time the thermal excursions of the vanes cause the segments 32 to move relative to the inner support ring 40.
Disposed at the upstream end of each segment 32 and extending between said segment 32 and the upstream end of the base 42.is a spring meand in the form of a C-shaped, flexible spring 70. The width of a said spring 70 increases radially outward as viewed along the longitudinal axis of the gas turbine engine. As shown in Fig. 1, a plurality of springs 70 are provided preferably corresponding to the number of segments 32 of the segmented ring 30. Each spring 70 is connected at its opposite ends to a segment 32 and to the base 42 of the inner support ring 40. By this arrangement, the springs 70 provide a constant biasing force for maintaining the guide vanes 16 in axial and radial alignment during botçn transient and steady state operating conditions of the gas turbine engine when the stationary vane assembly 10 and the components thereof are subjected to thermal excursions. Accordingly, the arrangement of springs 70, segmented ring 30, and the inner ring support 40 effectively defines a flexible coupling as part of the supporting and sealing structure. Furthermore, axial positioning of the guide vanes 16 is assured by virtue of the slip fit interconnection between the T-shaped lugs 34 and the inner ring support structure 40, and in particular, the interconnection between the transverse bar segments 38 of the lugs 34 and the circumferential slot 60 defined between the disc 44 and angled ring 50.
In operation, the supporting and sealing structure 30 insures that the required sealing of the pressure upstream of the vane assembly is maintained relative to the differential pressure downstream of the vane assembly, and by virtue of the flexible coupling interconnection, differential thermal expansion and excursions of the shrouds and the guide vanes are readily accommodated without the development of local stresses which could lead to cracks in the assembly 10.
Accordingly, the subject invention affords a partially segmented turbine nozzle having a flexible support and sealing inner shroud member which is effective to accommodate and neutralize thermal excursions or components of the nozzle during transient and steady state operating conditions of the gas turbine engine. The flexible coupling at the inner shroud of the subject nozzle assembly ensures that the strucural integrity of the fixed, usually brazed, connections of the vane tips to the outer shroud is maintained.
Furthermore, the subject construction eliminates local stress problems brought about by differential thermal expansions of the components of the assembly. Flexibility of the subject turbine nozzle is achieved by the arrangement of segmenting the inner shroud and the provision of the springs which maintain the radial positions of the inner ring structure 40, while providing flexibility of the guide vanes in the radial direction. The pressure dam forming a portion of the supporting and sealing inner shroud construction is effective to reduce leakage through the segmented inner shroud, and the pressure dam includes the slip fit construction so as to maintain the pressure dam during various operating conditions of the gas turbine engine, while enabling free movement of the guide vanes in the radial direction. Still further, the specific construction of the pressure dam of the subject invention functions to maintain and locate the axial position of the segmented ring, and the slip fit construction further aids in maintaining concentricity of the inner shroud.
Although the invention has been described with respect to a preferred embodiment, it is readily apparent that those skilled in the art will be able to make numerous modifications of the exemplary embodiments without departing from the spirit and scope of the invention. All such modifications are intended to be included within the spirit and scope of the invention as defined by the appended

Claims (14)

claims. CLAIMS
1. A supporting and sealing structure for an array of radially extending guide vanes of a nozzle of a gas turbine engine, said supporting and sealing structure comprising: a radially outer shroud means rigidly connected to the radially outer tip portions of the vanes; and radially inner shroud means flexibly connected to the radially inner root portions of the vanes to define a flexible coupling to accommodate radial excursions and reduce the stress levels of the vanes during thermal loading, said inner shroud means including a pressure dam to reduce leakage through said flexible coupling connection.
2. A structure as claimed in Claim 1, wherein said radially inner shroud means comprises: a radially inner ring support structure of a generally L-shaped cross-section including a cylindrical base and a radically outwardly extending disc; a segmented ring disposed radially outward of said inner ring support structure and defined by a plurality of segments, each segment being respectively connected to the root portion of a vane and being slidably engagable with the disc portion of the inner ring support structure to define the pressure dam; and spring means forming part of said flexible coupling and extending said cylindrical base and the outer segmented ring.
3. A structure as claimed in Claim 2, wherein said spring means comprises a plurality of individual springs extending between said cylindrical base and the individual segments of the outer segmented ring.
4. A structure as claimed in Claim 3, wherein each spring is of generally C-shaped configuration in cross-section.
5. A structure as claimed in claim 4, wherein the width af each spring increases radially outward as viewed along the longitudinal axis of the gas turbine engine.
6. A structure as claimed in any one of Claims 2 to 5, wherein said radially inner ring support structure is of unitary construction.
7. A structure as claimed in any of Claims 2 to 6, wherein each of the plurality of segments of the segmented ring includes a depending, radially inward extending lug, and wherein the peripheral edge of the radially outward extending disc includes a corresponding plurality of radiallyextending slots, each lug being respectively engaged with a slot to define a slip fit connection for retaining the inner ring support structure concentric with the outer shroud and maintaining the pressure dam upon radial excursions of the guide vanes.
8. A structure as claimed in Claim 7, wherein each lug is T-shaped in cross-section, and each slot is of a corresponding configuration.
9. A structure as claimed in any one of the preceding Claims, wherein the radially outer tip portion of each vane is brazed to the radially outer shroud means.
10. A supporting and sealing structure for an array of radially extending guide vanes of a nozzle of a gas turbine engine, substantially as hereinbefore described, with reference to the accompanying drawings.
11. A nozzle for a gas turbine engine, including a radial inner shroud ring, a radial outer shroud ring co-axial with said radial inner shroud ring, and a plurality of radially extending vane structures disposed between said radially extending inner and said radially outer shroud rings, each of said vanes being firmly secured at one end to the radially outer shroud ring, each of said vanes being secured at its other end to said inner shroud ring by an inner support and sealing structure, said inner support structure comprising:: a radial inner ring structure of generally Lshaped cross-section including a cylindrical base and a radially outward extending disc; a segmented ring disposed radially outward of said inner ring support structure and defined by a plurality of segments each of which is respectively connected to said other end of teach vane structure, said outer segmented ring being slidably engaged with the radially outwardly extending disc of the inner ring support structure to retain the vane in radial alignment and to define a pressure dam to minimize leakage through said inner support structure; and spring means extending between said cylindrical base and the segmented ring to define a flexible coupling between the pressure dam and the segmented ring whereby said inner support structure defines a flexible connection between the other end of each vane structure and said inner shroud ring for accommodating radial excursions, reducing the stress level of each vane structure during thermal loading, and concentrically locating the inner support and sealing structure.
12. A nozzle as claimed in Claim 11, wherein said spring means comprise a plurality of individual springs of generally C-shaped configuration in cross-section, and extending between said cylindrical base and the individual segments of the outer segmented ring.
1 3. A nozzle as claimed in Claim 12, wherein the width of each spring increases radially outward as viewed along the longitudinal axis of the gas turbine engine.
14.nozzle as claimed in Claim 11, or 13, wherein each of the plurality of segments of the segmented ring includes a depending, radially inward extending lug, and wherein the peripheral edge of the radially outward extending disc includes a corresponding plurality of peripheral slots, each lug being respectively engaged with a slot to define a slip fit connection for retaining the inner ring structures in alignment and maintaining the pressure dam upon radial excursions of the vane structures.
1 5. A nozzle as claimed in Claim 14, wherein each lug is T-shaped in cross-section, and each slot is a corresponding configuration.
1 6. A nozzle for a gas turbine engine, substantially as hereinbefore described with reference to the accompanying drawings.
1 7. A gas turbine engine including a nozzle according to any one of Claims 11 to 17.
1 8. The feature hereinbefore disclosed, or their equivalents, in any novel selection.
GB8106159A 1980-05-19 1981-02-26 Supporting and sealing structure for a guide vane array of a gas turbine engine Expired GB2076069B (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US15104780A 1980-05-19 1980-05-19

Publications (2)

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GB2076069A true GB2076069A (en) 1981-11-25
GB2076069B GB2076069B (en) 1983-12-21

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GB8106159A Expired GB2076069B (en) 1980-05-19 1981-02-26 Supporting and sealing structure for a guide vane array of a gas turbine engine

Country Status (8)

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JP (1) JPS5716205A (en)
BR (1) BR8102869A (en)
CA (1) CA1135195A (en)
DE (1) DE3108319C2 (en)
FR (1) FR2482657A1 (en)
GB (1) GB2076069B (en)
IT (1) IT1137478B (en)
SE (1) SE448757B (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2434182A (en) * 2006-01-11 2007-07-18 Rolls Royce Plc Guide vane arrangement for a gas turbine engine

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP3631271B2 (en) * 1993-11-19 2005-03-23 ユナイテッド テクノロジーズ コーポレイション Inner shroud integrated stator vane structure

Family Cites Families (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB589541A (en) * 1941-09-22 1947-06-24 Hayne Constant Improvements in axial flow turbines, compressors and the like
FR954577A (en) * 1947-09-02 1950-01-03
GB816288A (en) * 1957-03-25 1959-07-08 Gen Motors Corp Improvements relating to labyrinth seals in turbines or compressors
US3552753A (en) * 1968-06-26 1971-01-05 Westinghouse Electric Corp High efficiency static seal assembly
US3529906A (en) * 1968-10-30 1970-09-22 Westinghouse Electric Corp Static seal structure
US3647311A (en) * 1970-04-23 1972-03-07 Westinghouse Electric Corp Turbine interstage seal assembly
US3829233A (en) * 1973-06-27 1974-08-13 Westinghouse Electric Corp Turbine diaphragm seal structure
US4011718A (en) * 1975-08-01 1977-03-15 United Technologies Corporation Gas turbine construction
SE398659B (en) * 1976-05-05 1978-01-09 Stal Laval Turbin Ab SEALING DEVICE IN A GAS TURBINE

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2434182A (en) * 2006-01-11 2007-07-18 Rolls Royce Plc Guide vane arrangement for a gas turbine engine
US7753648B2 (en) 2006-01-11 2010-07-13 Rolls-Royce Plc Guide vane arrangements for gas turbine engines

Also Published As

Publication number Publication date
GB2076069B (en) 1983-12-21
IT1137478B (en) 1986-09-10
IT8121699A0 (en) 1981-05-14
BR8102869A (en) 1982-02-02
JPS6153521B2 (en) 1986-11-18
SE8101236L (en) 1981-11-20
SE448757B (en) 1987-03-16
FR2482657B1 (en) 1985-03-22
CA1135195A (en) 1982-11-09
DE3108319C2 (en) 1986-12-18
DE3108319A1 (en) 1982-01-28
FR2482657A1 (en) 1981-11-20
JPS5716205A (en) 1982-01-27

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PCNP Patent ceased through non-payment of renewal fee