IP Library Granted Patent US 10,326,322
Granted Patent B2
US 10,326,322 · App. 13/970,199 · Granted Jun 18, 2019

Double-rotor flux-switching machine

Inventors: Arun Gandhi (Troy, NY); Leila Parsa (Green Island, NY)
Assignee: Rensselaer Polytechnic Institute
H02K1/246H02K15/03H02K16/02H02K21/44H02K1/17H02K21/04Y02E10/725Y10T29/49012
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Quick Facts
Patent No.
US 10,326,322
App. No.
13/970,199
Granted
Jun 18, 2019
Kind
B2
Abstract

Advantageous machines, such as flux-switching machines (FSMs) are provided. An FSM can be yokeless and can have two rotors, which can be displaced from one another (e.g., by half a pole pitch). An FSM can be a flux-switching permanent magnet machine (FSPMM), and all magnets can be magnetized in the same circumferential direction. FSMs of the subject invention are cost-effective, have high torque density, and can operate well even under fault conditions.

Claims (69)

1. A flux-switching permanent magnet machine (FSPMM), comprising:

a first rotor;

a second rotor; and

a stator disposed between the first rotor and the second rotor, wherein the stator comprises a plurality of slots, a plurality of permanent magnets, and a coil wrapped around each permanent magnet,

wherein the stator has a ring shape with an annular opening,

wherein all permanent magnets of the FSPMM are magnetized in the same circumferential direction of the stator,

wherein each coil that is wrapped around a permanent magnet is disposed in a slot of the plurality of slots of the stator,

wherein each coil directly faces the first rotor and the second rotor without a back-iron interposed therebetween,

wherein each slot of the plurality of slots of the stator has a width configured to focus flux, from the permanent magnet around which the coil disposed in said slot is wrapped, across a first airgap separating the stator and the first rotor,

wherein the width of each slot is larger than the first airgap,

wherein the first airgap is a shortest radial distance between the stator and the first rotor, and

wherein adjacent permanent magnets of the FSPMM are not connected via a yoke.

2. The FSPMM according to claim 1 ,

wherein the first rotor is disposed within the annular opening of the stator, wherein the second rotor has a ring shape with an annular opening, and wherein the stator is disposed within the annular opening of the second rotor.

3. The FSPMM according to claim 2 ,

wherein the first rotor comprises rotor teeth on a surface thereof facing the stator, wherein the first rotor comprises teeth gaps between the rotor teeth of the first rotor, wherein the second rotor comprises rotor teeth on a surface thereof facing the stator, wherein the second rotor comprises teeth gaps between the rotor teeth of the second rotor, and

wherein the first rotor and the second rotor are displaced from each other by half a pole pitch such that the rotor teeth of the first rotor are aligned with the teeth gaps of the second rotor and the rotor teeth of the second rotor are aligned with the teeth gaps of the first rotor.

4. The FSPMM according to claim 1 , wherein the stator comprises at least five permanent magnets, and wherein the number of phases of the FSPMM is at least three.

5. The FSPMM according to claim 1 , wherein the stator, all permanent magnets, and all coils are encapsulated in a non-magnetic encapsulating material.

6. The FSPMM according to claim 5 , wherein the non-magnetic encapsulating material comprises a thermally-conducting resin.

7. The FSPMM according to claim 1 , wherein each permanent magnet comprises NdFeB or AlNiCo,

wherein the stator comprises steel, wherein the first rotor comprises steel, and wherein the second rotor comprises steel.

8. The FSPMM according to claim 1 ,

wherein the first rotor has a ring shape, wherein the second rotor has a ring shape, wherein the FSPMM has an axial arrangement, such that neither the first rotor nor the second rotor is disposed within the annular opening of the stator, and

wherein the first rotor is disposed on one side of the stator in the axial direction and the second rotor is disposed on the other side of the stator in the axial direction.

9. The FSPMM according to claim 8 ,

wherein the first rotor comprises rotor teeth on a surface thereof facing the stator, wherein the first rotor comprises teeth gaps between the rotor teeth of the first rotor, wherein the second rotor comprises rotor teeth on a surface thereof facing the stator, wherein the second rotor comprises teeth gaps between the rotor teeth of the second rotor, and

wherein the first rotor and the second rotor are displaced from each other by half a pole pitch such that the rotor teeth of the first rotor are aligned with the teeth gaps of the second rotor and the rotor teeth of the second rotor are aligned with the teeth gaps of the first rotor.

10. The FSPMM according to claim 8 , wherein the stator, all permanent magnets, and all coils are encapsulated in a non-magnetic encapsulating material.

11. The FSPMM according to claim 1 , wherein the width of each slot of the plurality of slots of the stator is also configured to focus flux, from the permanent magnet around which the coil disposed in said slot is wrapped, across a second airgap separating the stator and the second rotor,

wherein the second airgap is a shortest radial distance between the stator and the second rotor, and

wherein a smallest width of each slot of the plurality of slots of the stator is greater than both the first airgap and the second airgap.

12. The FPSMM according to claim 11 , wherein each coil is wrapped around its respective permanent magnet in a circumferential direction of the stator.

13. A method of manufacturing a flux-switching permanent magnet machine (FSPMM), comprising:

providing a plurality of permanent magnets;

providing the permanent magnets within a stator;

providing a coil wound around each permanent magnet; and

providing the stator between a first rotor and a second rotor, wherein the stator has a ring shape with an annular opening,

wherein all permanent magnets of the FSPMM are magnetized in the same circumferential direction of the stator,

wherein the stator comprises a plurality of slots,

wherein each coil that is wrapped around a permanent magnet is disposed in a slot of the plurality of slots of the stator,

wherein each coil directly faces the first rotor and the second rotor without a back-iron interposed therebetween,

wherein each slot of the plurality of slots of the stator has a width configured to focus flux, from the permanent magnet around which the coil disposed in said slot is wrapped, across a first airgap separating the stator and the first rotor,

wherein the width of each slot is larger than the first airgap,

wherein the first airgap is a shortest radial distance between the stator and the first rotor, and

wherein adjacent permanent magnets of the FSPMM are not connected via a yoke.

14. The method according to claim 13 ,

wherein the second rotor has a ring shape with an annular opening, wherein providing the stator between the first rotor and the second rotor comprises disposing the first rotor within the annular opening of the stator and disposing the stator within the annular opening of the second rotor,

wherein the first rotor and the second rotor each comprises rotor teeth facing the stator and teeth gaps between the rotor teeth, and

wherein the second rotor is provided such that it is displaced from the first rotor by half a pole pitch such that the rotor teeth of the first rotor are aligned with the teeth gaps of the second rotor and the rotor teeth of the second rotor are aligned with the teeth gaps of the first rotor.

15. The method according to claim 13 , further comprising:

encapsulating the stator, the permanent magnets, and the coils in a non-magnetic encapsulating material, prior to providing the stator between the first rotor and the second rotor, and

magnetizing the permanent magnets such that all permanent magnets of the FSPMM are magnetized in the same circumferential direction of the stator, wherein magnetizing the permanent magnets is performed after encapsulating the stator, the permanent magnets, and the coils in the non-magnetic encapsulating material.

16. The method according to claim 13 , wherein the width of each slot of the plurality of slots of the stator is also configured to focus flux, from the permanent magnet around which the coil disposed in said slot is wrapped, across a second airgap separating the stator and the second rotor,

wherein the second airgap is a shortest radial distance between the stator and the second rotor, and

wherein a smallest width of each slot of the plurality of slots of the stator is greater than both the first airgap and the second airgap.

17. A flux-switching machine (FSM), comprising:

a first rotor;

a second rotor; and

a stator disposed between the first rotor and the second rotor,

wherein the stator has a ring shape with an annular opening,

wherein the stator comprises

a plurality of DC field coil/permanent magnet hybrid combinations and a phase winding coil wrapped around each DC field coil/permanent magnet hybrid combination, wherein each DC field coil/permanent magnet hybrid combination comprises a DC field coil and a permanent magnet, and

wherein all permanent magnets of the FSM are magnetized in the same circumferential direction, and

wherein the phase winding coil directly faces the first rotor and the second rotor without a back-iron interposed therebetween, and

wherein adjacent permanent magnets of the FSM are not connected via a yoke.

18. The FSM according to claim 17 , wherein the first rotor is disposed within the annular opening of the stator,

wherein the second rotor has a ring shape with an annular opening, wherein the stator is disposed within the annular opening of the second rotor, wherein the first rotor comprises rotor teeth on a surface thereof facing the stator, wherein the first rotor comprises teeth gaps between the rotor teeth of the first rotor, wherein the second rotor comprises rotor teeth on a surface thereof facing the stator, wherein the second rotor comprises teeth gaps between the rotor teeth of the second rotor, and

wherein the first rotor and the second rotor are displaced from each other by half a pole pitch such that the rotor teeth of the first rotor are aligned with the teeth gaps of the second rotor and the rotor teeth of the second rotor are aligned with the teeth gaps of the first rotor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 20, 2014
From: GANDHI, ARUN; PARSA, LEILA
To: RENSSELAER POLYTECHNIC INSTITUTE
Reel/Frame 032002/0894 →
Continuity (2)
Provisional Application 61684853 · Aug 20, 2012
Related Publication 20140049124A1 · Feb 20, 2014
Cited By (1)
US 12,362,638