Claims
- 1. An active magnetic bearing for supporting a linear member (20) which is magnetic at least in the region (86) of being supported, comprising the combination of:
- elongated housing means (18) having at least one nonmagnetic region (39.sub.1) along its length located in the vicinity of said linear member (20) which includes said region (86) of being supported;
- at least one set of stationary electromagnets (10.sub.1, 12.sub.1, 14.sub.1, 16.sub.1) equidistantly positioned around said housing means (18) at said nonmagnetic region (39.sub.1), each electromagnet being comprised of a coil winding (32.sub.1, 34.sub.1, 36.sub.1, 38.sub.1) wound on a bifurcated pole piece (22.sub.1, 24.sub.1, 26.sub.1, 28.sub.1) having an optionally tapered region (90 and 92) adjoining each pole face of a pair of pole faces (94 and 96), said pole faces having a contour substantially corresponding to the cross sectional configuration of said housing means (18) and directed inwardly towards said linear member (20) to provide a localized magnetic field (30) of increased flux density which is coupled to said linear member to provide a suspension force for said linear member;
- position sensor means (48.sub.1 and 50.sub.1) selectively positioned on said housing means (18) adjacent said set of electromagnets and being operable to detect any displacement of said linear member (20) from a predetermined position within said housing means (18) and providing an output indicative of said displacement; and
- drive circuit means (126, 132, 138, 140, 150), coupled to said position sensor means (48.sub.1 and 50.sub.1) and being responsive to said output therefrom to provide a control signal, said control signal being coupled to predetermined coil windings (32.sub.1, 36.sub.1 and 34.sub.1, 38.sub.1) of said set of electromagnets for selective energization thereof to center said linear member at said nonmagnetic region.
- 2. The magnetic bearing as defined by claim 1 wherein said set of stationary electromagnets (10.sub.1, 12.sub.1, 14.sub.1, 16.sub.1) comprises a set of four electromagnets equidistantly positioned around said housing means (18) such that two electromagnets (10.sub.1, 14.sub.1 and 12.sub.1, 16.sub.1) each comprise mutually opposing pairs of electromagnets on opposite sides of said housing means (18) and respectively located along a common axis of two orthogonal axes (X, Y),
- wherein said position sensor means comprises two sensor means (48.sub.1 and 50.sub.1) each of which is aligned with a respective axis (X and Y) of said orthogonal axes, and
- wherein said drive circuit means comprises first and second drive circuits (126, 132, 138, 140, 150) respectively coupled to said sensor means (48.sub.1 and 50.sub.1) and operative to drive respective coil windings (32.sub.1, 36.sub.1 and 34.sub.1, 38.sub.1) of said pairs of electromagnets (10.sub.1, 14.sub.1 and 12.sub.1, 16.sub.1).
- 3. The magnetic bearing as defined by claim 1 wherein said housing means includes another nonmagnetic region (39.sub.2) in spaced apart relationship with said at least one nonmagnetic region (39.sub.1), and additionally including:
- a second set of stationary electromagnets (10.sub.2, 12.sub.2, 14.sub.2, 16.sub.2) equidistantly positioned around said housing means (18) at said another nonmagnetic region (39.sub.2), each electromagnet of said second set also being comprised of a coil winding (32.sub.2, 34.sub.2, 36.sub.2 38.sub.2) wound on a bifurcated pole piece (22.sub.2, 24.sub.2, 26.sub.2, 28.sub.2) having a tapered region (90 and 92) adjoining each pole face of a pair of pole faces (94 and 96), said pole faces having a contour corresponding to the cross sectional configuration of said housing means and directed inwardly towards said linear member to provide a localized field (30) as aforesaid;
- second position sensor means (48.sub.2 and 50.sub.2) selectively positioned on said housing means (18) adjacent said second set of electromagnets (10.sub.2, 12.sub.2, 14.sub.2, 16.sub.2) and being operable to detect any displacement of said linear member (20) from a predetermined position in said housing means (18) at said another nonmagnetic region (39.sub.2) and providing a respective output indicative of said displacement thereat; and
- second drive circuit means (126, 132, 138, 140, 150) coupled to said second sensor means and being responsive to said output therefrom to provide another control signal, said another control signal being coupled to predetermined coil windings (32.sub.2, 36.sub.2 and 34.sub.2, 38.sub.2) of said second set of electromagnets (10.sub.2, 12.sub.2, 14.sub.2, 16.sub.2) for selective energization thereof to center said linear member at said another nonmagnetic region (39.sub.2).
- 4. The magnetic bearing as defined by claim 3 wherein both sets of electromagnets (10.sub.1, 12.sub.1 . . . 14.sub.2, 16.sub.2) are mounted in mutually opposing pairs (10.sub.1, 14.sub.1 . . . 12.sub.2, 16.sub.2) around said housing means (18) along two mutually perpendicular axes (X, Y) transversely through said housing means at said nonmagnetic regions (39.sub.1 and 39.sub.2),
- wherein both sets of position sensor means (48.sub.1, 50.sub.1 and 48.sub.2, 50.sub.2) include a respective pair of position transducers substantially aligned with said electromagnets (10.sub.1, 12.sub.1 and 10.sub.2, 12.sub.2) so as to detect any displacement of said linear member from said predetermined position along said axes (X and Y), and
- wherein both said drive circuit means comprises pairs of drive circuits (126, 134, 138, 140, 150) coupled to respective pairs of position transducers (48.sub.1, 50.sub.1 and 48.sub.2, 50.sub.2) for energizing respective pairs of electromagnets (10.sub.1, 14.sub.1 . . . 12.sub.2, 16.sub.2) which are thereby adapted to position said linear member along said perpendicular axes (X, Y) at both said nonmagnetic regions (39.sub.1 and 39.sub.2) of said housing means.
- 5. The magnetic bearing as defined by claim 4 wherein said elongated housing means (18) is generally cylindrical in shape.
- 6. The magnetic bearing as defined by claim 4 wherein said housing means (18) is generally circular in cross section and
- wherein said linear member (20) comprises an elongated armature shaft having a generally rounded outer surface (43) at least in the proximity of said nonmagnetic regions (39.sub.1 and 39.sub.2) of said housing means.
- 7. The magnetic bearing as defined by claim 6 wherein said bifurcated pole pieces (22.sub.1, 24.sub.1 . . . 26.sub.2, 28.sub.2) have generally concave pole faces (94, 96) substantially matching the rounded outer surface (43) of said armature shaft (20).
- 8. The magnetic bearing as defined by claim 5 wherein said linear member (20) comprises a shaft generally cylindrical in shape (43) in the region of said generally cylindrical housing (18).
- 9. The magnetic bearing as defined by claim 5 wherein said linear member (20) comprises a shaft having a cross section including a region (86, 88) of magnetic material coincident with said region (96.sub.1, 96.sub.2) of being supported.
- 10. The magnetic bearing as defined by claim 5 wherein said linear member (20) comprises an elongated shaft having an annular cross section of varying dimensions (86, 88) along its length and wherein the cross sectional area is greater in said region of being supported at said nonmagnetic regions (96.sub.1, 96.sub.2) of said housing means (18).
- 11. The magnetic bearing as defined by claim 5 wherein said linear member (20) comprises a shaft (20') having a sleeve (98, 100) of magnetic material located in said regions of being supported at said nonmagnetic regions (96.sub.1, 96.sub.2) of said housing means (18).
- 12. The magnetic bearing as defined by claim 5 wherein said linear member (20) comprises a shaft (20") of nonmagnetic material including an axial bore within which is located respective magnetic bodies (102 and 104) situated at the region of being supported at said nonmagnetic regions (96.sub.1, 96.sub.2) of said housing means (18).
- 13. The magnetic bearing as defined by claim 4 and additionally including magnetic shield means (72 and 74) located intermediate said electromagnets (10.sub.1, 12.sub.1 . . . 14.sub.2, 16.sub.2) and said position sensor means (48.sub.1 . . . 50.sub.2)
- 14. The magnetic bearing as defined by claim 4 and additionally including flange means (58 and 60) located on the exterior of said housing means (18) for attaching said electromagnets thereto, and wherein said flange means include radially extending shield members (72 and 74) located intermediate said electromagnets (10.sub.1, 12.sub.1 . . . 14.sub.2, 16.sub.2) and said position sensor means (48.sub.1 . . . 50.sub.2).
- 15. The magnetic bearing as defined by claim 4 wherein said position sensor means (48.sub.1 . . . 50.sub.2) comprises eddy current sensor means.
- 16. The magnetic bearing as defined by claim 1 wherein said drive circuit means (126, 132, 138, 140, 150) includes means providing respective signals proportional to displacement and velocity of said linear member from a central position in said housing means (18) from which is generated a composite control signal of a predetermined gain for providing a desired bearing stiffness and dampening characteristic.
- 17. The magnetic bearing as defined by claim 1 and additionally including means (106) connected to said linear member (20) for dampening undesired axial displacement thereof.
- 18. The magnetic bearing as defined by claim 17 wherein said dampening means (106) comprises a bumper magnet assembly including a magnet (108), coupled to said linear member (20), located adjacent at least one stationary magnet (112) and being poled to be repulsed thereby.
- 19. The magnetic bearing as defined by claim 17 wherein said dampening means (106) comprises a bumper magnet assembly including a magnet (108) coupled to one end of said linear member (20), located intermediate a pair of stationary magnets (112 and 114), said magnets being poled so that the intermediate magnet is repulsed by both stationary magnets.
- 20. The magnetic bearing as defined by claim 19 wherein the magnets (108, 112 and 114) are comprised of axially magnetized magnets.
- 21. The magnetic bearing as defined by claim 20 wherein said axially magnetized magnets (108, 112 and 114) are permanent magnets and additionally including means (118) located in proximity to said intermediate magnet (108) for applying an AC axial magnetic field thereto thereby causing said intermediate magnet (108) to oscillate between said pair of stationary magnets (112 and 114).
- 22. The magnetic bearing as defined by claim 21 wherein said permanent magnets (108, 112 and 114) are located in a housing (116) adjacent said elongated housing means (18) and wherein said means for applying said AC magnetic field comprises a coil (118) located around said housing (116).
- 23. The magnetic bearing as defined by claim 19 wherein one of said stationary magnets (112) includes an aperture, and additionally including a connecting link (110) passing through said aperture connecting said intermediate magnet (108) to said linear member (20).
Parent Case Info
This is a continuation-in-part application of U.S. patent application Ser. No. 220,213 filed on Dec. 24, 1980, now abandoned, and is entitled to the benefits bestowed by 35 U.S.C. 120.
ORIGIN OF THE INVENTION
The invention described herein was made in the performance of work under a NASA contract and is subject to the provisions of Section 305 of the National Aeronautics and Space Act of 1958, Public Law 85-568 (72 Stat. 435; 42 U.S.C. 2457).
US Referenced Citations (6)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
220213 |
Dec 1980 |
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