IP Library Granted Patent US 10,337,621
Granted Patent B2
US 10,337,621 · App. 15/631,527 · Granted Jul 2, 2019

Hydrostatic non-contact seal with weight reduction pocket

Inventors: Tara L. D'Ambruoso (Oxford, CT); Dwayne K. Mecklenburg (Stafford Springs, CT)
Assignee: United Technologies Corporation
F16J15/441F01D11/025F01D25/22F16J15/442F01D11/001F05D2240/10F05D2240/20F05D2240/53
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Quick Facts
Patent No.
US 10,337,621
App. No.
15/631,527
Granted
Jul 2, 2019
Kind
B2
Abstract

A non-contact seal assembly is provided. The non-contact seal assembly includes a plurality of seal shoes arranged about a centerline in an annular array, the seal shoes include a first seal shoe extending axially along the centerline between a first shoe end and a second shoe end. The non-contact seal assembly may comprise a seal base circumscribing the annular array of the seal shoes. The non-contact seal assembly may further comprise a plurality of spring elements, each of the spring elements radially between and connecting a respective one of the seal shoes with the seal base, where the plurality of seal shoes each includes a weight reduction pocket formed in a circumferential region of the seal shoe.

Claims (34)

1. A non-contact seal assembly, comprising:

a plurality of seal shoes arranged about a centerline in an annular array, the seal shoes including a first seal shoe extending axially along the centerline between a first shoe end and a second shoe end;

a seal base circumscribing the annular array of the seal shoes; and

a plurality of spring elements, each of the spring elements radially between and connecting a respective one of the seal shoes with the seal base,

where the plurality of seal shoes each includes a weight reduction pocket formed in a circumferential region of the seal shoe.

2. The non-contact seal assembly of claim 1 , where each of the plurality of first and second seal shoes includes opposing first and second circumferential sides, and the first circumferential side includes a first weight reduction pocket.

3. The non-contact seal assembly of claim 1 , where each of the plurality of first and second seal shoes includes opposing first and second circumferential sides, and the first circumferential side includes a first weight reduction pocket and the second circumferential side includes a second weight reduction pocket.

4. The non-contact seal assembly of claim 2 , where the first weight reduction pocket forms a through hole in the first circumferential side.

5. The non-contact seal assembly of claim 1 , where first weight reduction pocket forms a first through hole in the first circumferential side and the second weight reduction pocket forms a second through hole in the second circumferential side.

6. The non-contact seal assembly of claim 2 , where the plurality of seal shoes, the seal base and the plurality of spring elements are formed from nickel alloy.

7. The non-contact seal assembly of claim 2 , where the plurality of seal shoes, the seal base and the plurality of spring elements are formed from cobalt alloy.

8. The non-contact seal assembly of claim 1 , where the first seal shoe extends circumferentially, at the first shoe end, between a first shoe side and a second shoe side for a seal shoe length.

9. The non-contact seal assembly of claim 1 , where the seal shoes collectively form a substantially annular end surface at the second shoe end.

10. A non-contact seal assembly, comprising:

a plurality of seal shoes arranged about a centerline in an annular array, the seal shoes including a first seal shoe extending axially along the centerline between a first shoe end and a second shoe end;

a seal base circumscribing the annular array of the seal shoes; and

a plurality of spring elements, each of the spring elements radially between and connecting a respective one of the seal shoes with the seal base,

where the plurality of seal shoes each includes a weight reduction pocket formed in a circumferential region of a seal shoe stop that limits radial travel of the seal shoe.

11. The non-contact seal assembly of claim 10 , where each of the plurality of first and second seal shoes includes opposing first and second circumferential sides each uniquely associated with an associated one of a first or second shoe stop, and the first circumferential side includes a first weight reduction pocket.

12. The non-contact seal assembly of claim 10 , where each of the plurality of first and second seal shoes includes opposing first and second circumferential sides, with the first circumferential side includes a first weight reduction pocket and the second circumferential side includes a second weight reduction pocket.

13. The non-contact seal assembly of claim 11 , where the first weight reduction pocket forms a through hole in the first circumferential side.

14. The non-contact seal assembly of claim 10 , where first weight reduction pocket forms a first through hole in the first circumferential side and the second weight reduction pocket forms a second through hole in the second circumferential side.

15. The non-contact seal assembly of claim 11 , where the plurality of seal shoes, the seal base and the plurality of spring elements are formed from nickel alloy.

16. The non-contact seal assembly of claim 11 , where the plurality of seal shoes, the seal base and the plurality of spring elements are formed from cobalt alloy.

17. The non-contact seal assembly of claim 15 , where the first seal shoe extends circumferentially, at the first shoe end, between a first shoe side and a second shoe side for a seal shoe length.

18. The non-contact seal assembly of claim 16 , where the seal shoes collectively form a substantially annular end surface at the second shoe end.

19. An assembly for rotational equipment with an axial centerline, the assembly comprising:

a stator structure;

a rotor structure; and

a seal assembly that substantially seals an annular gap between the stator structure and the rotor structure, the seal assembly comprising a hydrostatic non-contact seal device including a plurality of seal shoes, a seal base and a plurality of spring elements;

the seal shoes arranged about a centerline in an annular array, the seal shoes sealingly engaging the rotor structure and including a first seal shoe extending axially along the centerline between a first shoe end and a second shoe end;

the seal base circumscribing the annular array of the seal shoes, the seal base mounted with the stator structure; and

where the plurality of seal shoes each includes a weight reduction pocket formed in a circumferential region of the seal shoe.

20. The assembly of claim 19 , where each of the plurality of first and second seal shoes includes opposing first and second circumferential sides, and the first circumferential side includes a first weight reduction pocket and the second circumferential side includes a second weight reduction pocket.

Assignments (5)
CHANGE OF NAME Recorded Jul 27, 2023
From: RAYTHEON TECHNOLOGIES CORPORATION
To: RTX CORPORATION
Reel/Frame 064714/0001 →
CONFIRMATORY LICENSE Recorded Jul 14, 2021
From: UNITED TECHNOLOGIES CORPORATION PRATT & WHITNEY
To: THE GOVERNMENT OF THE UNITED STATES AS REPRSENTED BY THE SECRETARY OF THE AIR FORCE
Reel/Frame 056862/0440 →
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 Jun 23, 2017
From: D'AMBRUOSO, TARA L.; MECKLENBURG, DWAYNE K.
To: UNITED TECHNOLOGIES CORPORATION
Reel/Frame 042797/0609 →
Continuity (1)
Related Publication 20180372228A1 · Dec 27, 2018