IP Library › Granted Patent US 12,188,357
Granted Patent B2
US 12,188,357 · App. 18/474,410 · Granted Jan 7, 2025

Turbomachinery seal plate with variable lattice densities

Inventors: Brent J. Merritt (Southwick, MA); Craig M. Beers (Wethersfield, CT)
Assignee: Hamilton Sundstrand Corporation
F01D11/005F01D25/28F05D2220/34F05D2240/55F05D2250/18F05D2250/90F05D2260/31
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Quick Facts
Patent No.
US 12,188,357
App. No.
18/474,410
Filed
Sep 26, 2023
Granted
Jan 7, 2025
Kind
B2
Art Unit
3745
USPC
415/170.1
Abstract

A seal plate for a rotary machine includes a hub centered on a central axis of the rotary machine, a disk portion extending radially outwards from the hub, and a variable lattice structure in an interior of the seal plate. The variable lattice structure includes a first region of the seal plate having a first lattice structure, and a second region of the seal plate having a second lattice structure. The second lattice structure of the second region is denser than the first lattice structure of the first region. The second region is a deflection region, a stress region, or an energy containment region of the seal plate.

Claims (37)

1. A seal plate for a rotary machine, the seal plate comprising:

a hub centered on a central axis of the rotary machine;

a disk portion extending radially outwards from the hub; and

a variable lattice structure in an interior of the seal plate, wherein the variable lattice structure comprises:

a first plurality of holes in the disk portion;

a second plurality of holes positioned radially outward from the first plurality of holes in the disk portion;

a first region of the seal plate having a first lattice structure, wherein the first region of the seal plate is in the first disk portion; and

a second region of the seal plate having a second lattice structure, wherein the second region of the seal plate is the hub of the seal plate;

a third region of the seal plate having a third lattice structure;

wherein the second lattice structure of the second region is denser than the first lattice structure of the first region, and the third lattice structure of the third region is denser than the first lattice structure of the first region;

wherein the first region surrounds the second plurality of holes, and the third region surrounds the first plurality of holes; and

wherein the second region is a deflection region and wherein the deflection region is a region of the seal plate subject to deflections.

2. The seal plate of claim 1 , wherein the seal plate has a continuous exterior solid surface surrounding the variable lattice structure.

3. The seal plate of claim 1 , wherein the second region of the variable lattice structure extends from the hub partially into the disk portion of the seal plate.

4. The seal plate of claim 1 , wherein the seal plate is made of a material selected from the group consisting of stainless steel, corrosion-resistant steel, nickel-chromium alloy, aluminum, titanium, synthetic fiber, fiberglass, composites, carbon fiber, thermosetting bismaleimide (BMI) resins, and combinations thereof.

5. A rotary machine comprising:

a tie rod extending through the rotary machine along a central axis;

a compressor rotor mounted on the tie rod;

a turbine rotor mounted on the tie rod;

a compressor housing surrounding the compressor rotor;

a turbine housing surrounding the turbine rotor; and

a seal plate positioned between the compressor housing and the turbine housing,

wherein the seal plate comprises:

a hub centered on the central axis of the rotary machine;

a disk portion extending radially outwards from the hub; and

a variable lattice structure in an interior of the seal plate, wherein the variable lattice structure comprises:

a first plurality of holes in the disk portion;

a second plurality of holes positioned radially outward from the first plurality of holes in the disk portion;

a first region of the seal plate having a first lattice structure, wherein the first region of the seal plate is in the first disk portion;

a second region of the seal plate having a second lattice structure, wherein the second region of the seal plate is the hub of the seal plate; and

a third region of the seal plate having a third lattice structure;

wherein the second lattice structure of the second region is denser than the first lattice structure of the first region, and the third lattice structure of the third region is denser than the first lattice structure of the first region;

wherein the first region surrounds the second plurality of holes, and the third region surrounds the first plurality of holes; and

wherein the second region is a deflection region and wherein the deflection region is a region of the seal plate subject to deflections.

6. The rotary machine of claim 5 , wherein the seal plate has a continuous exterior solid surface surrounding the variable lattice structure.

7. The rotary machine of claim 5 , wherein the second region of the variable lattice structure extends from the hub partially into the disk portion of the seal plate.

8. The rotary machine of claim 5 , wherein the seal plate is made of a material selected from the group consisting of stainless steel, corrosion-resistant steel, nickel-chromium alloy, aluminum, titanium, synthetic fiber, fiberglass, composites, carbon fiber, thermosetting bismaleimide (BMI) resins, and combinations thereof.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2023
From: MERRITT, BRENT J.; BEERS, CRAIG M.
To: HAMILTON SUNDSTRAND CORPORATION
Reel/Frame 065025/0323 →
Continuity (2)
Continuation 17472153 · Sep 10, 2021
Related Publication 20240011406A1 · Jan 11, 2024
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