Shroud assembly for turbine engine

US9915176B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9915176-B2
Application numberUS-201514715700-A
CountryUS
Kind codeB2
Filing dateMay 19, 2015
Priority dateMay 29, 2014
Publication dateMar 13, 2018
Grant dateMar 13, 2018

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A shroud assembly for a turbine engine includes a shroud having a front side confronting the blades of a turbine and a back side opposite the front side, a hanger configured to couple the shroud to with casing of the turbine, a cooling conduit extending through the hanger to supply a cooling fluid stream to the back side of the shroud, and a particle separator having a through passage forming part of the cooling conduit and a scavenge conduit branching from the through passage.

First claim

Opening claim text (preview).

What is claimed is: 1. A shroud assembly for a turbine engine having a compressor, a combustor, and a turbine within a casing, with the turbine having a plurality of annularly-arranged fixed vanes defining nozzles therebetween and a plurality of annularly-arranged rotating blades paired with the fixed vanes to define one stage of the turbine, the shroud assembly comprising: a shroud having a front side confronting the blades and a back side opposite the front side: a hanger configured to couple the shroud with the casing: a cooling conduit extending through at least a portion of the hanger to supply a cooling fluid stream to the back side of the shroud; and at least one particle separator having a through passage forming part of the cooling conduit and a scavenge conduit branching from the through passage; wherein the at least one particle separator separates particles from the cooling fluid stream in the form of a concentrated-particle stream containing the separated particles, which is directed along the scavenge conduit, and the remaining cooling fluid stream forms a reduced-particle stream, which is passed along the cooling conduit to the back side of the shroud; wherein the at least one particle separator comprises at least one centrifugal separator; and wherein the at least one centrifugal separator comprises an angular velocity decreaser located within through passage, downstream of the angular velocity increaser. 2. The shroud assembly of claim 1 wherein the scavenge conduit comprises a scavenge conduit inlet located downstream of the angular velocity increaser and upstream of the angular velocity decreaser. 3. The shroud assembly of claim 1 wherein the at least one particle separator comprises at least one inertial separator having a turn in the through passage defining an outer wall of the through passage, and the scavenge conduit has an inlet at the outer wall, with the turn being shaped to change the direction of the cooling fluid stream such that particles entrained in the cooling fluid stream are carried by their inertia against the outer wall where they enter the scavenge conduit along with a portion of the cooling fluid stream to form the concentrated-particle stream. 4. The shroud assembly of claim 3 wherein the turn changes the direction of the cooling fluid stream at least 90 degrees. 5. The shroud assembly of claim 4 wherein the turn changes the direction of the cooling fluid stream at least 180 degrees. 6. The shroud assembly of claim 3 wherein the turbine engine defines a centerline, about which the blades rotate, and the turn has an inlet and an outlet, which are radially offset from each other relative to the centerline. 7. A shroud assembly for a turbine engine having a compressor, a combustor, and a turbine within a casing, with the turbine having a plurality of annularly-arranged fixed vanes defining nozzles therebetween and a plurality of annularly-arranged rotating blades paired with the fixed vanes to define one stage of the turbine, the shroud assembly comprising: a shroud having a front side confronting the blades and a back side opposite the front side; a hanger configured to couple the shroud with the casing; a cooling conduit extending through at least a portion of the hanger to supply a cooling fluid stream to the back side of the shroud; and at least one particle serparator having through passage forming part of the cooling conduit and a scavenge conduit branching from the through passage; wherein the at least one particle separator separates particles from the cooling fluid stream in the form of a concentrated-particle stream containing the separated particles, which is directed along the scavenge conduit, and the remaining cooling fluid stream forms a reduced-particle stream, which is passed along the cooling conduit to the back side of the shroud; wherein the at least one particle separator comprises at least one inertial separator having a turn in the through passage defining an outer wall of the through passage, and the scavenge conduit has an inlet at the outer wall, with the turn being shaped to change the direction of the cooling fluid stream such that particles entrained in the cooling fluid stream are carried by their inertia against the outer wall where they enter the scavenge conduit along with a portion of the cooling fluid stream to form the concentrated-particle stream; and wherein the scavenge conduit has a scavenge outlet between the hanger and the plurality of annularly-arranged fixed vanes. 8. The shroud assembly of claim 7 wherein the scavenge outlet is fluidly coupled downstream of the plurality of annularly-arranged rotating blades. 9. A shroud assembly for a turbine engine having a compressor, a combustor, and a turbine within a casing, with the turbine having a plurality of annularly-arranged fixed vanes defining nozzles therebetween and a plurality of annularly-arranged rotating blades paired with the fixed vanes to define one stage of the turbine, the shroud assembly comprising: a shroud having a front side confronting the blades and a back side opposite the front side; a hanger configured to couple the shroud with the casing; a cooling conduit extending through at least a portion of the hanger to supply a cooling fluid stream to the back side of the shroud; and at least one particle separator having a through passage forming part of the cooling conduit and a scavenge conduit branching from the through passage; wherein the at least one particle separator separates particles from the cooling fluid stream in the form of a concentrated-particle stream containing the separated particles, which is directed along the scavenge conduit, and the remaining cooling fluid stream forms a reduced-particle stream, which is passed along the cooling conduit to the back side of the shroud; and wherein the scavenge conduit has a scavenge outlet between the hanger and the plurality of annularly-arranged fixed vanes. 10. The shroud assembly of claim 9 wherein the scavenge outlet is fluidly coupled downstream of the plurality of annularly-arranged rotating blades. 11. A shroud assembly for a turbine engine having a compressor, a combustor, and a turbine within a casing, with the turbine having a plurality of annularly-arranged fixed vanes defining nozzles therebetween and a plurality of annularly-arranged rotating blades paired with the fixed vanes to define one stage of the turbine, the shroud assembly comprising: a shroud having a front side confronting the blades and a back side opposite the front side; a hanger configured to couple the shroud with the casing; a cooling conduit extending through at least a portion of the hanger to supply a cooling fluid stream to the back side of the shroud; and at least one particle separator having a through passage forming part of the cooling conduit and a scavenge conduit branching from the through passage; wherein the at least one particle separator separates particles from the cooling fluid stream in the form of a concentrated-particle stream containing the separated particles, which is directed along the scavenge conduit, and the remaining cooling fluid stream forms a reduced-particle stream, which is passed along the cooling conduit to the back side of the shroud; wherein the at least one particle separator comprises at least one inertial separator having a turn in the through passage defining an outer wall of the through passage, with the turn being shaped to change the direction of the cooling fluid stream such that particles entrained in the cooling fluid stream are carried by their inertia against the outer wall; and wherein the turbine engine defines a centerline, about which the

Assignees

Inventors

Classifications

  • Preventing clogging or obstruction of flow paths by dirt, dust, or foreign particles · CPC title

  • the medium being gaseous, e.g. air {(F02C7/125 takes precedence)} · CPC title

  • Shroud seal segments · CPC title

  • F01D25/14Primary

    Casings modified therefor (double casings F01D25/26) · CPC title

  • F01D25/24Primary

    Casings (modified for heating or cooling F01D25/14); Casing parts, e.g. diaphragms, casing fastenings (casings for rotary machines or engines in general F16M {; special arrangements in stators dealing with breaking-off of part of rotor F01D21/045}) · CPC title

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What does patent US9915176B2 cover?
A shroud assembly for a turbine engine includes a shroud having a front side confronting the blades of a turbine and a back side opposite the front side, a hanger configured to couple the shroud to with casing of the turbine, a cooling conduit extending through the hanger to supply a cooling fluid stream to the back side of the shroud, and a particle separator having a through passage forming p…
Who is the assignee on this patent?
Gen Electric
What technology area does this patent fall under?
Primary CPC classification F01D25/14. Mapped technology areas include Mechanical Engineering.
When was this patent published?
Publication date Tue Mar 13 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 7 related publications on this page (citations in our corpus or others sharing the same primary CPC).