Radial magnetic bearing and method of manufacture
09845829 · 2017-12-19
Assignee
Inventors
Cpc classification
F16C43/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49009
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16C32/0461
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2300/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C43/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2202/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0468
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C43/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C43/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A radial magnetic bearing having an inner rotor including a central shaft having a ferromagnetic armature mounted on the shaft and an outer stator providing a plurality of electromagnets including poles made of ferromagnetic material which project radially inwardly towards the rotor is provided. As such, air-gaps (e) are left between end faces of the poles and the ferromagnetic armature, and coils wound around the poles. The poles are extended through outer portions attached to a supporting member. Each pole and the corresponding outer portion are included in an angularly segmented module providing a stack of laminations made of ferromagnetic material. The outer portion defines shoulders with respect to the corresponding pole, the outer portion contacting outer portions of neighboring segmented modules and the outer portions of all segmented modules being assembled by clamping rings, wherein the coils located in free spaces around the poles are mounted in a string.
Claims
1. A radial magnetic bearing, comprising: an inner rotor having an axis of rotation and including a central shaft having an outer periphery and a ferromagnetic armature mounted on the shaft on outer periphery; and an outer stator having a plurality of electromagnets including poles made of at least one of a ferromagnetic and stainless ferromagnetic material that project radially inwardly towards the rotor, leaving air-gaps (e) between end faces of the poles and the ferromagnetic armature, and coils wound around the poles, the poles being extended through outer portions attached to a supporting member, wherein each pole and the corresponding outer portion are included in an angularly segmented module having a stack of laminations made of at least one of a ferromagnetic and stainless ferromagnetic material, the outer portion defining shoulders with respect to the pole, the outer portion contacting outer portions of neighboring segmented modules and the outer portions of all segmented modules being assembled by clamping rings, and wherein coils located in free spaces around the poles are mounted in a string.
2. The radial magnetic bearing according to claim 1, wherein each outer portion of each segmented module has rounded outer corners.
3. The radial magnetic bearing according to claim 2, wherein each outer portion of each segmented module includes a central hole provided in the stack of laminations for mounting purposes.
4. The radial magnetic bearing according to claim 3, wherein the clamping rings further comprise a first clamping ring having a plurality of holes designed to be registered with the central holes of the segmented modules and a second clamping ring having a plurality of guides designed for receiving the central holes of the segmented modules and the plurality of holes of the first clamping ring.
5. The radial magnetic bearing according to claim 4, wherein the angularly segmented modules all have the same shape.
6. The radial magnetic bearing according to claim 4, wherein the angularly segmented modules have the same radial size but have different sizes in a peripheral direction of the angularly segmented modules.
7. The radial magnetic bearing according to claim 4, wherein the poles of the angularly segmented modules further comprise a first number of pairs of poles of reduced width of a first set of angularly segmented modules and a second number of poles of larger width of a second set of angularly segmented modules which are disposed between the pairs of poles of reduced width.
8. The radial magnetic bearing according to any claim 7, wherein the number of the angularly segmented modules and of the corresponding poles is equal to one of 12, 16 and 20.
9. The radial magnetic bearing according to claim 7, wherein the number of pairs of poles of reduced width of the first set of angularly segmented modules is equal to four and the number of the poles of larger width of the second set of angularly segmented modules disposed between the pairs of poles of reduced width is equal to one of 1, 2 and 3.
10. The radial magnetic bearing according to claim 9, wherein the ferromagnetic armature of the inner rotor is made of a stack of high quality magnetic laminations.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(10) The present invention will be described in connection with preferred embodiments which are given by way of examples.
(11) A typical arrangement of a first embodiment of the invention is illustrated in
(12) As shown in
(13)
(14) As shown in
(15) An example of mounting method of the radial bearing of
(16) A first clamping ring 127 has a plurality of holes 134 designed to be registered with the central holes 124 of the segmented modules 120, 120A, 120B and a second clamping ring 128 has a plurality of guides 129 such as studs or spindles designed for receiving the central holes of the segmented modules 120, 120A, 120B and the plurality of holes 134 of the first clamping ring 127.
(17) Thus a method for making a radial magnetic bearing according to the invention essentially comprises the steps of:
(18) forming a plurality of angularly segmented modules 120, 120A, 120B, each comprising a pole 121 and an outer portion 123 made of a stack of laminations made of ferromagnetic material, the outer portion 123 defining shoulders 125 with respect to the pole 121,
(19) forming first and second clamping rings 127, 128,
(20) forming a plurality of coils 122 connected in a string, the number of coils 122 being equal to the number of poles 121,
(21) arranging the angularly segmented modules 120, 120A, 120B in such a manner that each outer portion 123 contacts outer portions 123 of neighboring segmented modules 120, 120A, 120B essentially without air-gap and without insulating separation, free spaces being defined between the poles 121 of adjacent segmented modules 120, 120A, 120B,
(22) assembling the angularly segmented modules 120, 120A, 120B together with the first and second clamping rings 127, 128, and
(23) inserting the plurality of coils 122 interconnected in a string in the free spaces around the plurality of poles 121 of the segmented modules 120, 120A, 120B.
(24) As already mentioned, in practice an air-gap of very small value, such as for example an air-gap of 0.1 mm, may be tolerated between the outer portions 123 of two neighboring segmented modules 120, 120A, 120B.
(25) More specifically, the step of assembling the angularly segmented modules 120, 120A, 120B comprises inserting a plurality of guides 129 of the second clamping ring 128 into central holes 124 of the segmented modules 120, 120A, 120B and a plurality of holes 134 of the first clamping ring 127.
(26) Generally speaking, the shape and size of the angularly segmented modules 120, 120A, 120B are chosen to optimize the radial load capacity whilst enabling serial production.
(27) Due to the provision of wound segmented modules 120, 120A, 120B, it is possible to define the right shape aiming at obtaining optimum carrying capacity, while easily integrating the coils in this type of magnetic bearing module and therefore allowing for serial production.
(28) Moreover since the mounting of the coils 122 is achieved through a string of coils, the number of interconnections is reduced.
(29) Finally, the provision of first and second clamping rings 127, 128 with the cooperation of holes and studs or other guiding means enables to precisely assemble the segmented modules in adjacent contacting positions, without any insulating separation or air-gap. The segmented modules 120, 120A, 120B and clamping rings 127, 128 are radially and axially locked in a final step of assembly.
(30) The system of angularly segmented modules according to the invention is applicable to all types of radial active magnetic bearings and all types of magnetic materials.
(31) A specific example of coils 122 and of modules 120 comprising stacked laminations for forming a pole 121 and an outer portion 123, together with a central hole 124 and rounded corners 126 being formed in the outer portion 123 is illustrated in
(32) According to a specific embodiment, all angularly segmented modules 120 have the same shape and size, thus facilitating the manufacturing process (see e.g.
(33) However, it is also possible that the angularly segmented modules 120A, 120B have the same radial size but have different sizes in a peripheral direction of the angularly segmented modules 120A, 120B. Different types of modules of different shapes could thus be integrated in the stator 102 of a radial magnetic bearing to optimize the load capacity.
(34) For example it is possible to design two types of segmented modules 120A, 120B, as illustrated in
(35) In the embodiments of
(36) For example, the number of pairs of poles 121 of reduced width of the first set of angularly segmented modules 120A may be equal to four, whereas the number of the poles 121 of larger width of the second set of angularly segmented modules 1206, which are interposed between the pairs of poles 121 of reduced width, may be equal to 1 (see
(37) Thus according to specific embodiments of the invention the total number of angularly segmented modules 120, 120A, 1206 and of the corresponding poles 121 may be equal to 12, 16 or 20, but other numbers of segmented modules 120 or 120A, 1206 are possible.
(38) Generally speaking, the invention provides a simplification in the manufacturing process, increases performance and reduces cost.
(39) The following non limiting list of advantages is linked with the implementation of the invention: Optimization of the radial load capacity of the order of 30% with respect to a standard design; Decrease of the length by 30% to 40% for the same load capacity of a conventional version of radial magnetic bearing; Drastic reduction of the number of interconnections and failures due to the winding in rosary (i.e. arrangement of a string of coils), thus also leading to a cost reduction; Ease of assembly and disassembly of the radial magnetic bearing comprising a stator with wound modules; Adaptation to all magnetic materials; Adaptation to all models and types of radial magnetic bearings; Ability to automate the assembly of coils and modules; Possibility of assembling the modules by tight rings or shrunk can; Possibility of easily integrating additional sensors such as thermal sensors.
(40) Although preferred embodiments have been shown and described, it should be understood that any changes and modifications may be made therein without departing from the scope of the invention as defined in the appended claims. Thus the features of the different embodiments may be combined.