Magnetic radial bearing having single sheets in the tangential direction
09568046 · 2017-02-14
Assignee
Inventors
Cpc classification
F16C32/0406
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0461
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0412
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2300/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0444
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0408
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The invention relates to an easily mountable and highly dynamic radial bearing. According to the invention, a magnetic radial bearing for the rotatable mounting of a rotor (3) is provided, having a stator (2) that comprises several coil assemblies (6). The coil assemblies (6) are arranged around an axis (1) of the radial bearing in a circumferential direction. Each of the coil assemblies (6) has a laminated core (7) having single sheets. Each of the coil assemblies (6) further has an axial field coil (11) that is wound around the corresponding laminated core (7). The single sheets are stacked in the tangential direction in every laminated core (7).
Claims
1. A magnetic radial bearing for rotatably supporting a rotor, said magnetic bearing comprising a stator having several coil assemblies which are arranged about an axis of the radial bearing in a circumferential direction, each of the coil assemblies including a laminated core with single sheets and a coil which is wound about the laminated core and configured as an axial field coil, said single sheets of the laminated core being stacked in the circumferential direction, and each of the coil assemblies and also each of the laminated cores and each of the coils provided in each of the coil assemblies have a kidney-shaped form with radially outwardly curved radially inner and radially outer surfaces, so that each of the kidney-shaped coils is wound about each of the kidney-shaped laminated cores in each of the coil assemblies, an annular housing in which the coil assemblies are secured, and a separate supporting ring attached to an inner circumference of the annular housing and configured to radially support the coil assemblies from inside, and the supporting ring is provided with radial projecting vanes which hold it in position relative to the housing by a positive connection with the housing and insulate the coil assemblies from each other by location of one of the vanes between two of the coil assemblies.
2. The magnetic radial bearing of claim 1, wherein the stator has four of said coil assemblies facing each other in pairs.
3. The magnetic radial bearing of claim 1, wherein the laminated core has in an axially extending cutting plane a U-shaped cross section having two sides and a section connecting the sides and having portions extending outwardly beyond the sides, said coil being wound about a part of the laminated core in a direction perpendicular to the axis of the radial bearing, said part being assigned to the section.
4. The magnetic radial bearing of claim 1, wherein the laminated core has an arched configuration in the circumferential direction.
5. The magnetic radial bearing of claim 1, wherein each of the coil assemblies comprises a coil carrier arranged around the laminated core.
6. The magnetic radial bearing of claim 5, wherein the coil carrier is separable.
7. The magnetic radial bearing of claim 5, wherein the coil carrier is sprayed onto the laminated core.
8. The magnetic radial bearing of claim 1, wherein the housing is made of two parts, each of the two parts of the housing having an annular shape, and the two parts are configured as identical and cup-shaped parts.
9. The magnetic radial bearing of claim 1, wherein in each of the coil assemblies and also in each of the laminated cores and in each of the coils provided in each of the coil assemblies having a kidney-shaped form the radially outwardly curved radially inner and radially outer surfaces are connected with one another by rounded convex transitions.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) The present invention is now explained in more detail with reference to the attached drawings, which show in:
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(10) The exemplary embodiments described in more detail below represent preferred embodiments of the present invention.
(11)
(12) The stator comprises several coil assemblies 6 distributed over its circumference each of which having each a laminated core 7. Each laminated core 7 has single sheets, which, relative to the middle of the laminated core, are stacked in the tangential direction of the radial bearing. The cross section of each laminated core 6 along the axis 1 of the radial bearing substantially has a U shape. This U shape represents two sides 8, 9 and a section 10 connecting the two sides. An axial field coil 11 is wound onto this connecting section 10 or the corresponding laminated core section. The axis of the axial field coil 11 extends in parallel to the axis 1 of the radial bearing.
(13) Basic excitation of the coil assemblies 6 results, for example, in the magnetic flux indicated by arrows 12, 13 in
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(15) In this example, four coil assemblies each having a laminated core 7 and an axial field coil 11 are arranged equally distributed on the circumference. This means, two of the four coil assemblies always face each other in pairs relative to the axis 1.
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(18) In
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(20) Therefore, according to the invention, the magnetic path can constructed with low eddy currents. Namely, the four magnetic paths in the stator are laminated.
(21) As
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(23) In
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(25) The design of the magnetic bearing according to the invention with the kidney-shaped coils on coil formers facilitates a particularly compact construction. The core lamination of the soft-magnetic segments enables high control quality to be achieved. All the components are preferably so shaped such that they can be fixed by simple axial joining. This ensures low-cost assembly.