IP Library Granted Patent US 12,480,544
Granted Patent B2
US 12,480,544 · App. 18/331,680 · Granted Nov 25, 2025

Hybrid airfoil and auxiliary magnetic bearings

Inventors: Viktor Kilchyk (Lancaster, NY); Christopher Simpson (West Hartford, CT)
Assignee: HAMILTON SUNDSTRAND CORPORATION
F16C32/0425F16C17/024H02K7/09F16C2380/26
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Quick Facts
Patent No.
US 12,480,544
App. No.
18/331,680
Granted
Nov 25, 2025
Kind
B2
Abstract

A hybrid airfoil bearing for a shaft is provided and includes airfoil bearing components and passive magnetic bearing components. The airfoil bearing components include a top foil immediately surrounding the shaft and additional components. The passive magnetic bearing components are integrated into the shaft and the additional components of the airfoil bearing components to remove a static load of the shaft on the top foil.

Claims (61)

1 . A hybrid airfoil bearing for a shaft, the airfoil bearing comprising:

airfoil bearing components comprising a top foil immediately surrounding the shaft, the airfoil bearing components further comprising additional components; and

passive magnetic bearing components integrated into the shaft and the additional components of the airfoil bearing components to remove a static load of the shaft on the top foil,

wherein:

the additional components of the airfoil bearing components comprise stationary components defining a bore and the shaft is rotatable about a longitudinal axis thereof within the bore and relative to the stationary components, and

the stationary components comprise a housing defining an outer bore, a bearing sleeve supported within the outer bore and a singular bump foil completely surrounding the top foil in a circumferential direction.

2 . The hybrid airfoil bearing according to claim 1 , wherein:

the shaft comprises first magnetic materials having a first magnetic pole at a first end thereof and second magnetic materials having a second magnetic pole, which is opposite the first magnetic pole, at a second end thereof, which is opposite the first end thereof, and

at least one of the stationary components comprises third magnetic materials having the first magnetic pole at a first end thereof, which corresponds to the first end of the shaft, and fourth magnetic materials having the second magnetic pole at a second end thereof, which is opposite the first end thereof and which corresponds to the second end of the shaft.

3 . The hybrid airfoil bearing according to claim 2 , wherein passive magnetic repulsion of the first and third magnetic materials and passive magnetic repulsion of the second and fourth magnetic materials suspends the shaft within the bore.

4 . The hybrid airfoil bearing according to claim 2 , wherein the at least one of the stationary components is a bearing sleeve.

5 . The hybrid airfoil bearing according to claim 1 , wherein:

the shaft comprises an outer ring of magnetic materials having a first magnetic pole, and

at least one of the stationary components comprises an inner ring of magnetic materials having the first magnetic pole.

6 . The hybrid airfoil bearing according to claim 5 , wherein passive magnetic repulsion of the outer and inner rings of the magnetic materials suspends the shaft within the bore.

7 . The hybrid airfoil bearing according to claim 5 , wherein the at least one of the stationary components is a bearing sleeve.

8 . A hybrid airfoil bearing for a shaft, the airfoil bearing comprising:

airfoil bearing components comprising a top foil immediately surrounding the shaft, the airfoil bearing components further comprising additional components; and

passive magnetic bearing components integrated into the shaft and the additional components of the airfoil bearing components to remove a static load of the shaft on the top foil,

wherein:

the additional components of the airfoil bearing components comprise stationary components defining a bore and the shaft is rotatable about a longitudinal axis thereof within the bore and relative to the stationary components, and

the stationary components comprise a housing defining an outer bore, a bearing sleeve supported within the outer bore and elastomeric O-rings by which the bearing sleeve is supported within the outer bore.

9 . A hybrid airfoil bearing, comprising:

a housing defining an outer bore;

a bearing sleeve supportively disposed within the outer bore and defining an inner bore;

a shaft, which is rotatable about a longitudinal axis thereof within the inner bore and relative to the housing and the bearing sleeve;

a top foil immediately surrounding the shaft; and

a singular bump foil completely surrounding the top foil in a circumferential direction,

the bearing sleeve and the shaft being configured for passive magnetic repulsion of one another to suspend the shaft within the inner bore and to remove a static load of the shaft on the top foil.

10 . The hybrid airfoil bearing according to claim 9 , wherein:

the shaft comprises first magnetic materials having a first magnetic pole at a first end thereof and second magnetic materials having a second magnetic pole, which is opposite the first magnetic pole, at a second end thereof, which is opposite the first end thereof, and

the bearing sleeve comprises third magnetic materials having the first magnetic pole at a first end thereof, which corresponds to the first end of the shaft, and fourth magnetic materials having the second magnetic pole at a second end thereof, which is opposite the first end thereof and which corresponds to the second end of the shaft.

11 . The hybrid airfoil bearing according to claim 9 , wherein:

the shaft comprises an outer ring of magnetic materials having a first magnetic pole, and

the bearing sleeve comprises an inner ring of magnetic materials having the first magnetic pole.

12 . A device, comprising:

a housing;

shaft, which is rotatable within the housing; and

hybrid airfoil bearings to support the shaft within the housing,

each of the hybrid airfoil bearings comprising:

airfoil bearing components comprising a top foil immediately surrounding the shaft, the airfoil bearing components further comprising additional components; and

passive magnetic bearing components integrated into the shaft and the additional components of the airfoil bearing components to remove a static load of the shaft on the top foil,

wherein:

the additional components of the airfoil bearing components comprise stationary components defining a bore and the shaft is rotatable about a longitudinal axis thereof within the bore and relative to the stationary components, and

the stationary components comprise a housing defining an outer bore, a bearing sleeve supported within the outer bore and a singular bump foil completely surrounding the top foil in a circumferential direction.

13 . The device according to claim 12 , wherein:

the device is an aviation motor of an aircraft,

the device further comprises a stator configured to generate magnetic flux to drive rotation of the shaft, and

the hybrid airfoil bearings comprise first and second hybrid airfoil bearings on either side of the stator.

14 . The device according to claim 12 , wherein:

the device is an air cycle machine, and

the hybrid airfoil bearings comprise at least one of an axially oriented hybrid airfoil bearing and a radially oriented hybrid airfoil bearing.

15 . The motor according to claim 12 , wherein:

the additional components of the airfoil bearing components comprise stationary components defining a bore, and

the shaft is rotatable about a longitudinal axis thereof within the bore and relative to the stationary components.

16 . The motor according to claim 15 , wherein:

the shaft comprises first magnetic materials having a first magnetic pole at a first end thereof and second magnetic materials having a second magnetic pole, which is opposite the first magnetic pole, at a second end thereof, which is opposite the first end thereof, and

at least one of the stationary components comprises third magnetic materials having the first magnetic pole at a first end thereof, which corresponds to the first end of the shaft, and fourth magnetic materials having the second magnetic pole at a second end thereof, which is opposite the first end thereof and which corresponds to the second end of the shaft.

17 . The motor according to claim 15 , wherein:

the shaft comprises an outer ring of magnetic materials having a first magnetic pole, and

at least one of the stationary components comprises an inner ring of magnetic materials having the first magnetic pole.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 9, 2023
From: KILCHYK, VIKTOR; SIMPSON, CHRISTOPHER
To: HAMILTON SUNDSTRAND CORPORATION
Reel/Frame 063902/0972 →
Continuity (1)
Related Publication 20240410422A1 · Dec 12, 2024
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