Hybrid magnetic suspension of a rotor
09863431 ยท 2018-01-09
Assignee
Inventors
- Joaquim Da Silva (Sennely, FR)
- Yves DUPUIS (Saint-Just, FR)
- Olivier Lemarchand (Guichainville, FR)
- Lateb Ramdane (Vernon, FR)
- Erwan Salahun (Groix, FR)
- Ulrich Schroeder (Mont-Saint-Aignan, FR)
Cpc classification
F16C2360/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/058
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0478
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2360/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0495
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/0653
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2360/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0425
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/051
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/058
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A hybrid magnetic suspension of a rotor (1) having compressor wheels (2, 3) having permanent magnets (104, 114) integral to shrunk fit rings (8, 18) arranged on the rotor (1) in the vicinity of the compressor wheels (2, 3), permanent magnets (124, 134) integral to stationary rings (23, 33) coaxially arranged with the rotor (1) and associated with a resilient material (5, 15) to define a passive radial magnetic bearing, coils (6, 16) associated with magnetic armatures (10, 20) and facing rotor parts (7, 17) being located perpendicularly to the rotor (1), and axial sensors (60, 160) configured for sensing the axial position of the rotor (1) and control means (200) configured for feeding the coils (6, 16) as a function of the outputs of the axial sensors (60, 160) for generating both axial bearing forces and a motor torque and thereby being adapted for defining an axial bearingless motor.
Claims
1. A hybrid magnetic suspension of a rotor having a first compressor wheel at a first end thereof and a second compressor wheel at a second end thereof, comprising: a passive radial magnetic bearing comprising: at least first and second sets of permanent magnets integral to first and second rings shrunk fit onto the rotor in a vicinity of the first and second compressor wheels, the first and second sets of permanent magnets being retained by an outer non-magnetic ring coaxial with the rotor, at least third and fourth sets of permanent magnets integral to first and second stationary rings coaxially arranged with the rotor and associated with a resilient material in the vicinity of the first and second compressor wheels, the third and fourth sets of permanent magnets facing the first and second sets of permanent magnets respectively while providing a gap there-between to define the passive radial magnetic bearing; and an axial bearingless motor comprising: at least first and second coils respectively associated with first and second magnetic armatures and respectively facing first and second rotor parts located perpendicularly to the rotor, axial sensors configured for sensing an axial position of the rotor and providing outputs, wherein commanding currents are received in the at least first and second coils as a function of the outputs of the axial sensors, wherein each magnet of the first, second, third, and fourth sets of permanent magnets includes at least one insert made of an electrically conductive material, wherein the passive radial magnetic bearing and the axial bearingless motor exclude an implementation of auxiliary landing bearings.
2. The hybrid magnetic suspension according to claim 1, wherein the electrically conductive material comprises aluminum or copper.
3. The hybrid magnetic suspension according to claim 1, wherein the at least one insert is located in a center position between a pair of two individual permanent magnets, in a direction along a longitudinal axis of the rotor, the pair of two individual permanent magnets respectively being from the first and second sets of permanent magnets or from the third and fourth sets of permanent magnets.
4. The hybrid magnetic suspension according to claim 1, wherein the at least one insert comprises two inserts made of the electrically conductive material, the two inserts being located at both sides of an individual permanent magnet in a direction along a longitudinal axis of the rotor, the individual permanent magnet being a magnet from the first, the second, the third, or the fourth sets of permanent magnets.
5. The hybrid magnetic suspension according to claim 1, wherein the first and second shrunk fitted rings are constituted by a single hollow cylinder.
6. The hybrid magnetic suspension according to claim 1, wherein the first and second shrunk fit rings define a thermal barrier.
7. The hybrid magnetic suspension according to claim 1, wherein the axial bearingless motor further comprises the first and second rotor parts, each of the first and second rotor parts being a part made of an electrically conductive and magnetic alloy for defining an induction motor, a part made of a permanent magnet for defining a permanent magnet motor, or a part made of a hard magnetic material for defining a hysteresis motor or a reluctance motor.
8. The hybrid magnetic suspension according to claim 1, wherein the first and second rotor parts are respectively located on first and second front faces of the first and second compressor wheels.
9. The hybrid magnetic suspension according to claim 1, wherein the first and second rotor parts are respectively located on first and second front faces of a disc which is integrally located perpendicularly to the rotor between the first and second compressor wheels.
10. A tandem moto-compressor comprising: a hybrid magnetic suspension having; a passive radial magnetic bearing comprising: at least first and second sets of permanent magnets integral to first and second rings shrunk fit onto a rotor in a vicinity of first and second compressor wheels, the first and second sets of permanent magnets being retained by an outer non-magnetic ring coaxial with the rotor, at least third and fourth sets of permanent magnets integral to first and second stationary rings coaxially arranged with the rotor and associated with a resilient material in the vicinity of the first and second compressor wheels, the third and fourth sets of permanent magnets facing the first and second sets of permanent magnets respectively while providing a gap there-between to define the passive radial magnetic bearing; and an axial bearingless motor comprising: at least first and second coils respectively associated with first and second magnetic armatures and respectively facing first and second rotor parts located perpendicularly to the rotor, axial sensors configured for sensing an axial position of the rotor and providing outputs, wherein commanding currents are received in the at least first and second coils as a function of the outputs of the axial sensors, wherein the first and second rotor parts are respectively located on first and second front faces of the first and second compressor wheels, and wherein each magnet of the first, second, third, and fourth sets of permanent magnets includes at least one insert made of an electrically conductive material, wherein the passive radial magnetic bearing and the axial bearingless motor exclude an implementation of auxiliary landing bearings.
11. An electrically assisted turbocharger comprising: a hybrid magnetic suspension having; a passive radial magnetic bearing comprising: at least first and second sets of permanent magnets integral to first and second rings shrunk fit onto a rotor in a vicinity of first and second compressor wheels, the first and second sets of permanent magnets being retained by an outer non-magnetic ring coaxial with the rotor, at least third and fourth sets of permanent magnets integral to first and second stationary rings coaxially arranged with the rotor and associated with a resilient material in the vicinity of the first and second compressor wheels, the third and fourth sets of permanent magnets facing the first and second sets of permanent magnets respectively while providing a gap there-between to define the passive radial magnetic bearing; and an axial bearingless motor comprising: at least first and second coils respectively associated with first and second magnetic armatures and respectively facing first and second rotor parts located perpendicularly to the rotor, axial sensors configured for sensing an axial position of the rotor and providing outputs, wherein commanding currents are received in the at least first and second coils as a function of the outputs of the axial sensors, and wherein the first and second rotor parts are respectively located on first and second front faces of the first and second compressor wheels, and wherein each magnet of the first, second, third, and fourth sets of permanent magnets includes at least one insert made of an electrically conductive material, wherein the passive radial magnetic bearing and the axial bearingless motor exclude an implementation of auxiliary landing bearings.
12. A centrifugal moto-compressor comprising: a hybrid magnetic suspension having; a passive radial magnetic bearing comprising: at least first and second sets of permanent magnets integral to first and second rings shrunk fit onto a rotor in a vicinity of first and second compressor wheels, the first and second sets of permanent magnets being retained by an outer non-magnetic ring coaxial with the rotor, at least third and fourth sets of permanent magnets integral to first and second stationary rings coaxially arranged with the rotor and associated with a resilient material in the vicinity of the first and second compressor wheels, the third and fourth sets of permanent magnets facing the first and second sets of permanent magnets respectively while providing a gap there-between to define the passive radial magnetic bearing; and an axial bearingless motor comprising: at least first and second coils respectively associated with first and second magnetic armatures and respectively facing first and second rotor parts located perpendicularly to the rotor, axial sensors configured for sensing an axial position of the rotor and providing outputs, wherein commanding currents are received in the at least first and second coils as a function of the outputs of the axial sensors, wherein each magnet of the first, second, third, and fourth sets of permanent magnets includes at least one insert made of an electrically conductive material, wherein the passive radial magnetic bearing and the axial bearingless motor exclude an implementation of auxiliary landing bearings.
13. An electric compressor for a vehicle heat ventilation air conditioning system comprising: a hybrid magnetic suspension having; a passive radial magnetic bearing comprising: at least first and second sets of permanent magnets integral to first and second rings shrunk fit onto a rotor in a vicinity of first and second compressor wheels compressor wheels, the first and second sets of permanent magnets being retained by an outer non-magnetic ring coaxial with the rotor, rotor; at least third and fourth sets of permanent magnets integral to first and second stationary rings coaxially arranged with the rotor and associated with a resilient material in the vicinity of the first and second compressor wheels, the third and fourth sets of permanent magnets facing the first and second sets of permanent magnets respectively while providing a gap there-between to define the passive radial magnetic bearing; and an axial bearingless motor comprising: at least first and second coils respectively associated with first and second magnetic armatures and respectively facing first and second rotor parts located perpendicularly to the rotor, axial sensors configured for sensing an axial position of the rotor and providing outputs, wherein commanding currents are received in the at least first and second coils as a function of the outputs of the axial sensors, wherein each magnet of the first, second, third, and fourth sets of permanent magnets includes at least one insert made of an electrically conductive material, wherein the passive radial magnetic bearing and the axial bearingless motor exclude an implementation of auxiliary landing bearings.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(11) The present invention will be described in connection with preferred embodiments which are given by way of examples.
(12)
(13) A rotor shaft 1 is coupled to a first compressor wheel 2 at a first end thereof and to a second compressor wheel 3 at a second end thereof.
(14) An axial bearingless motor comprises rotor parts 7, 17 which are located perpendicularly to the rotor shaft 1 and in the embodiment of
(15) Generally speaking an axial bearingless motor comprises a rotor portion such as 7, 17 having a plurality of pole pairs armatures and stator portions each comprising a core 10, 20 with slots respectively for receiving windings 6, 16 configured to impress a motor torque and an axial bearing force, the stator portions being located opposite the rotor portions 7, 17 respectively. The cores 10, 20 may comprise a laminated magnetic iron stack or a magnetic composite.
(16) In the stator portions of the axial bearingless motor each coil 6, 16 may comprise separated windings used to impress the bearing force (annular coils centered on the axis of the shaft 1) and the motor torque (a monophasic or polyphasic winding arrangement within a plurality of slots made in the cores 10, 20).
(17) Alternatively the needed bearing force and motor torque may be generated in each coil 6, 16 by combined windings. In such a case a single coil 6, 16 in each stator portion will carry jointly the required motor and bearing ampere-turns.
(18) A plurality of pole pairs of armatures may be used by way of example. However the rotor parts 7, 17 may carry different structural elements depending on the chosen principle (permanent magnet, induction, switched reluctance, and hysteresis).
(19) First and second passive radial magnetic bearings are located on the vicinity of the compressor wheels 2, 3 to support the shaft 1 in levitation during functional operation of the compressor. Each passive radial magnetic bearing comprises permanent magnets fastened with the shaft 1 and permanent magnets which are stationary.
(20) More specifically as shown in
(21) The shaft 1 is levitated in a contactless manner due to the radial magnetic bearings. Since the passive magnetic bearings are not totally stable, the axial bearingless motor acts as a stabilizer and the resilient material 5, 15 acts as a damping support. The resilient material 5, 15 may be for example shrunk fit into the permanent magnets 24, 34 or glued thereon.
(22) The shaft's axial position is monitored by sensors 60, 160, e.g. of the variable inductive type, which detect any deviation from nominal position and emit signals which are used in a control system 200 to command currents in the windings 6, 16 of the axial bearingless motor in order to bring the shaft 1 back to its nominal position.
(23) Due to the implementation of passive magnetic bearings together with an axial bearingless motor and resilient means 5, 15 auxiliary landing bearings are not necessary for supporting the shaft 1.
(24) The casing or flanges and cooling systems with a refrigerant which are associated with the compressor are conventional.
(25) In the passive magnetic bearings the force is constituted by repulsion between oppositely directed magnets 4, 24 or 14, 34. The rotor magnets 4, 14 constituting one part of a passive magnetic bearing may be ring shape mounted on a ring 8, 18 supporting the magnets, such ring 8, 18 being shrunk fitted onto the rotor shaft 1.
(26) Alternatively, as shown in
(27) Different repulsion configurations of the permanent magnets 4, 24 and 14, 34 may be adopted as shown in
(28) In addition to two basic passive radial magnetic bearings 4, 24 and 14, 34 located in the vicinity of the compressor wheels 2, 3, it is possible to add some further passive radial magnetic bearings 14, 34; 14, 34 along the rotor shaft 1 (see
(29)
(30) The elements which are common to the embodiments of
(31) In the embodiment of
(32) As mentioned above different repulsion configurations of the permanent magnets 104, 124 and 114, 134 may be adopted as shown in
(33) In addition to two basic passive radial magnetic bearings 104, 124 and 114, 134 located in the vicinity of the compressor wheels 2, 3, it is possible to add some further passive radial magnetic bearings 114, 134 along the rotor shaft 1 (see
(34) In the examples of
(35) Thus in the examples of
(36) In the embodiment of
(37) The third and fourth sets of permanent magnets 24, 34 may be arranged so that they are integral to first and second stationary rings 23, 33 respectively. However according to a variant embodiment, the third and fourth sets of permanent magnets 24, 34 could be integral to the first and second rings of resilient material 5, 15, i.e. the stationary rings 23, 33 could be combined with the first and second rings of resilient material 5, 15.
(38)
(39) Basically the passive radial magnetic bearing of
(40) In the embodiments of
(41) The first and second coils 6, 16 and the corresponding sensors 60, 160, which are associated with first and second stationary magnetic armatures 10, 20 respectively are respectively facing the rotor parts 7, 17 which are located on the two front faces of the disc 13.
(42) The control unit 200 receives the outputs from the axial sensors 60, 160 and feeds the coils 6, 16 which serve as active axial bearing and may also create the motor torque as previously described.
(43)
(44) 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.